TY - JOUR A1 - Starke, Ines A1 - Koch, Andreas A1 - Kammer, Stefan A1 - Holdt, Hans-Jürgen A1 - Möller, Heiko Michael T1 - Electrospray mass spectrometry and molecular modeling study of formation and stability of silver complexes with diazaperylene and bisisoquinoline JF - Journal of mass spectrometry N2 - The complex formation of the following diazaperylene ligands (L) 1,12-diazaperylene 1, 1,1-bisisoquinoline 2, 2,11-disubstituted 1,12-diazaperylenes (alkyl=methyl, ethyl, isopropyl, 3, 5, 7), 3,3-disubstituted 1,1-bisisoquinoline (alkyl=methyl, ethyl, isopropyl, 4, 6, 8 and with R=phenyl, 11 and with pyridine 12), and the 5,8-dimethoxy-substituted diazaperylene 9, 6,6-dimethoxy-substituted bisisoquinoline 10 with AgBF4 was investigated. Collision-induced dissociation measurements were used to evaluate the relative stabilities of the ligands themselves and for the [1:1](+) complexes as well as for the homoleptic and heteroleptic silver [1:2](+) complexes in the gas phase. This method is very useful in rapid screening of the stabilities of new complexes in the gas phase. The influence of the spatial arrangement of the ligands and the type of substituents employed for the complexation were examined. The effect of the preorganization of the diazaperylene on the threshold activation voltages and thus of the relative binding energies of the different complexes are discussed. Density functional theory calculations were used to calculate the optimized structures of the silver complexes and compared with the stabilities of the complexes in the gas phase for the first time. KW - electrospray ionization mass spectrometry and modeling KW - silver(1) complexes KW - stability Y1 - 2018 U6 - https://doi.org/10.1002/jms.4071 SN - 1076-5174 SN - 1096-9888 VL - 53 IS - 5 SP - 408 EP - 418 PB - Wiley CY - Hoboken ER - TY - THES A1 - Strunk, David T1 - Gewinnung phenolischer Komponenten aus dem Birkenstamm als Rohstoffquelle für die Synthese eines neuen substituierten Phenylmethacrylats und dessen Polymerisation T1 - Extraction of phenolic components from the birch trunk as a source of raw material for the synthesis of a new substituted phenyl methacrylate and its polymerization N2 - In der vorliegenden Arbeit werden Wege zur Gewinnung verschiedener phenolischer Substanzen wie Lignin, Diarylheptanoide und 4-(3-Oxobutyl)phenol (Himbeerketon) aus dem Stamm der Hängebirke (Betula pendula) aufgezeigt. Durch Methacrylierung des 4-(3-Oxobutyl)phenols wurde ein Monomer erzeugt, welches mittels freier radikalischer Masse- und Lösungspolymerisation, sowie enzymatischer Polymerisation polymerisiert werden kann. Eine erste Isolierung von Bestandteilen wurde durch Extraktion von Innenholz bzw. Rinde mit Methanol erzielt. Die in Methanol unlöslichen Bestandteile des Innenholzes und der Rinde wurden anschließend mit ausgewählten ionischen Flüssigkeiten extrahiert. Es wurde ein Verfahren zum selektiven Trennen der mit diesen ionischen Flüssigkeiten extrahierten Bestandteile in Cellulose, Hemicellulose, Lignin und mit Ethylacetat extrahierbare Bestandteile entwickelt. Hierdurch war es möglich, sowohl die verwendeten ionischen Flüssigkeiten als auch das Innenholz und die Rinde hinsichtlich ihres Extraktionsverhaltens miteinander zu vergleichen. Ferner wurden verschiedene Strategien aufgezeigt, um insgesamt drei Spezies an Diarylheptanoiden aus dem methanolischen Extrakt der Rinde zu isolieren. Eines der gefundenen Diarylheptanoide (5 Hydroxy-1,7-bis(4-hydroxyphenyl)-3-heptanon) wurde via Retroaldolreaktion in 4 (3 Oxobutyl)phenol (Himbeerketon) und 3 (4 Hydroxyphenyl)propanal gespalten. Es wurde die Verwendung des 4-(3-Oxobutyl)phenol als Monomerbestandteil untersucht. Hierfür wurde 4-(3-Oxobutyl)phenylmethacrylat synthetisiert und Wege zur Reinigung mittels Säulenchromatographie und Umkristallisation aufgezeigt. Anschließend wurde Poly(4-(3-oxobutyl)phenylmethacrylat) (PObMA) und Polybenzylmethacrylats (PBzMA) aus Massen- und Lösungspolymerisation hergestellt. Die Ausbeuten an PObpMA im Vergleich zum PBzMA liegen bei gleichen Reaktionsbedingungen auf gleichem Niveau. Im Kontrast hierzu ist der Polymerisationsgrad aus freier radikalischer Polymerisation in Masse des PObpMA im Vergleich zum PBzMA um den Faktor 3,7 größer. Die Glasübergangstemperaturen des PObpMA liegen bei gleichen Reaktionsbedingungen sowohl bei freier radikalischer Polymerisation in Masse, als auch bei Lösungspolymerisation über denen des PBzMA. Darüber hinaus wurde die Polymerisation von 4-(3-Oxobutyl)phenylmethacrylat und Benzylmethacrylat mit einem Initiatorsystem bestehend aus Meerrettichperoxidase, Acetylaceton und Wasserstoffperoxid bei Raumtemperatur beschrieben. Die mit enzymatischem Initiatorsystem erzeugten Produkte zeigten starke Übereinstimmung mit Produkten aus Lösungspolymerisationen, welche mit Azobis(isobutyronitril) initiiert wurden. N2 - In the present work ways of obtaining various phenolic substances such as lignin, diarylheptanoids and 4-(3-oxobutyl)-phenol (raspberry ketone) from the trunk of the silver birch (Betula pendula) are shown. By methacrylating of 4-(3-oxobutyl)-phenol, a monomer was generated which can be polymerized by free radical mass and solution polymerization, as well as by enzymatic polymerization. A first separation of constituents was achieved by extraction of wood or bark with methanol. The methanol-insoluble components of the interior wood and the bark were then extracted with selected ionic liquids. A process has been developed for selectively separating the ingredients extracted with these ionic liquids into cellulose, hemicellulose, lignin and ethyl acetate extractables. This made it possible to compare both the ionic liquids used as well as the interior wood and the bark with respect to their extraction behavior with each other. Furthermore, different strategies were shown to isolate a total of three species of diarylheptanoids from the methanolic extract of the bark. One of the found diarylheptanoids (5-hydroxy-1,7-bis-(4-hydroxyphenyl)-3-heptanone) was cleaved by retroaldolysis in 4-(3-oxobutyl)-phenol (raspberry ketone) and 3-(4-hydroxyphenyl)-propanal. The use of 4- (3-oxobutyl) phenol as a monomer component was investigated. For this purpose, 4-(3-oxobutyl)-phenyl methacrylate was synthesized and ways of purification by column chromatography and recrystallization were shown. Subsequently, poly-(4-(3-oxobutyl)-phenyl methacrylate) (PObMA) and polybenzyl methacrylate (PBzMA) were prepared by mass and solution polymerization. The yields of PObpMA compared to PBzMA are at the same level when the same reaction conditions were used. In contrast, the degree of polymerization by free radical polymerization in mass of PObpMA compared to PBzMA is greater by a factor of 3.7. The glass transition temperatures of the PObpMA are both in free radical polymerization in bulk, as well as in solution polymerization over those of PbzMA when the same reaction conditions were used. Moreover, the polymerization of 4-(3-oxobutyl)-phenyl methacrylate and benzyl methacrylate at room temperature with an initiator system consisting of horseradish peroxidase, acetylacetone and hydrogen peroxide has been described. Products produced with enzymatic initiator system showed strong similarity with products from solution polymerizations initiated with Azobis(isobutyronitrile). KW - Birke KW - Rinde KW - Ionische Flüssigkeit KW - birch KW - bark KW - ionic liquiod KW - Diarylheptanoide KW - Himbeerketon KW - raspberry ketone Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-409228 ER - TY - JOUR A1 - Sun, Fu A1 - Dong, Kang A1 - Osenberg, Markus A1 - Hilger, Andre A1 - Risse, Sebastian A1 - Lu, Yan A1 - Kamm, Paul H. A1 - Klaus, Manuela A1 - Markoetter, Henning A1 - Garcia-Moreno, Francisco A1 - Arlt, Tobias A1 - Manke, Ingo T1 - Visualizing the morphological and compositional evolution of the interface of InLi-anode|thio-LISION electrolyte in an all-solid-state Li-S cell by in operando synchrotron X-ray tomography and energy dispersive diffraction JF - Journal of materials chemistry : A, Materials for energy and sustainability N2 - Dynamic and direct visualization of interfacial evolution is helpful in gaining fundamental knowledge of all-solid-state-lithium battery working/degradation mechanisms and clarifying future research directions for constructing next-generation batteries. Herein, in situ and in operando synchrotron X-ray tomography and energy dispersive diffraction were simultaneously employed to record the morphological and compositional evolution of the interface of InLi-anode|sulfide-solid-electrolyte during battery cycling. Compelling morphological evidence of interfacial degradation during all-solid-state-lithium battery operation has been directly visualized by tomographic measurement. The accompanying energy dispersive diffraction results agree well with the observed morphological deterioration and the recorded electrochemical performance. It is concluded from the current investigation that a fundamental understanding of the phenomena occurring at the solid-solid electrode|electrolyte interface during all-solid-state-lithium battery cycling is critical for future progress in cell performance improvement and may determine its final commercial viability. Y1 - 2018 U6 - https://doi.org/10.1039/c8ta08821g SN - 2050-7488 SN - 2050-7496 VL - 6 IS - 45 SP - 22489 EP - 22496 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Sun, Fu A1 - Osenberg, Markus A1 - Dong, Kang A1 - Zhou, Dong A1 - Hilger, Andre A1 - Jafta, Charl J. A1 - Risse, Sebastian A1 - Lu, Yan A1 - Markoetter, Henning A1 - Manke, Ingo T1 - Correlating Morphological Evolution of Li Electrodes with Degrading Electrochemical Performance of Li/LiCoO2 and Li/S Battery Systems BT - Investigated by Synchrotron X-ray Phase Contrast Tomography JF - ACS energy letters / American Chemical Society N2 - Efficient Li utilization is generally considered to be a prerequisite for developing next-generation energy storage systems (ESSs). However, uncontrolled growth of Li microstructures (LmSs) during electrochemical cycling has prevented its practical commercialization. Herein, we attempt to understand the correlation of morphological evolution of Li electrodes with degrading electrochemical performances of Li/LiCoO2 and Li/S systems by synchrotron X-ray phase contrast tomography technique. It was found that the continuous transformation of the initial dense Li bulk to a porous lithium interface (PL1) structure intimately correlates with the gradually degrading overall cell performance of these two systems. Additionally, the formation mechanism of the PLI and its correlation with previously reported inwardly growing LmS and the lithium-reacted region have been intensively discussed. The information that we gain herein is complementary to previous investigations and may provide general insights into understanding of degradation mechanisms of Li metal anodes and also provide highly needed guidelines for effective design of reliable next-generation Li metal-based ESSs. Y1 - 2018 U6 - https://doi.org/10.1021/acsenergylett.7b01254 SN - 2380-8195 VL - 3 IS - 2 SP - 356 EP - 365 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Sun, Zhiyong A1 - Glebe, Ulrich A1 - Charan, Himanshu A1 - Böker, Alexander A1 - Wu, Changzhu T1 - Enzyme-Polymer Conjugates as Robust Pickering Interfacial Biocatalysts for Efficient Biotransformations and One-Pot Cascade Reactions JF - Angewandte Chemie : a journal of the Gesellschaft Deutscher Chemiker ; International edition N2 - Despite the rapid development of Pickering interfacial catalysis (PIC) at liquid-liquid interfaces with chemocatalysts, the use of unstable biocatalysts at emulsion interfaces remains a technical challenge. Herein, we present a Pickering interfacial biocatalysis (PIB) platform based on robust and recyclable enzyme-polymer conjugates that act as both catalytic sites and stabilizers at the interface of Pickering emulsions. The conjugates were prepared by growing poly(N-isopropylacrylamide) on a fragile enzyme, benzaldehyde lyase, under physiological conditions. The mild in situ conjugation process preserved the enzyme structure, and the conjugates were used to emulsify a water-organic two-phase system into a stable Pickering emulsion, leading to a significantly larger interfacial area and a 270-fold improvement in catalytic performance as compared to the unemulsified two-phase system. The PIB system could be reused multiple times. Conjugates of other enzymes were also fabricated and applied for cascade reactions. KW - biphasic catalysis KW - cascade reactions KW - enzyme catalysis KW - enzyme-polymer conjugates KW - Pickering interfacial catalysis Y1 - 2018 U6 - https://doi.org/10.1002/anie.201806049 SN - 1433-7851 SN - 1521-3773 VL - 57 IS - 42 SP - 13810 EP - 13814 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Tadjoung Waffo, Armel Franklin A1 - Yesildag, Cigdem A1 - Caserta, Giorgio A1 - Katz, Sagie A1 - Zebger, Ingo A1 - Lensen, Marga C. A1 - Wollenberger, Ulla A1 - Scheller, Frieder W. A1 - Altintas, Zeynep T1 - Fully electrochemical MIP sensor for artemisinin JF - Sensors and actuators : B, Chemical N2 - This study aims to develop a rapid, sensitive and cost-effective biomimetic electrochemical sensor for artemisinin determination in plant extracts and for pharmacokinetic studies. A novel molecularly imprinted polymer (MIP)based electrochemical sensor was developed by electropolymerization of o-phenylenediamine (o-PD) in the presence of artemisinin on gold wire surface for sensitive detection of artemisinin. The experimental parameters, including selection of functional monomer, polymerization conditions, template extraction after polymerization, influence of pH and buffer were all optimized. Every step of imprinted film synthesis were evaluated by employing voltammetry techniques, surface-enhanced infrared absorption spectroscopy (SEIRAS) and atomic force microscopy (AFM). The specificity was further evaluated by investigating non-specific artemisinin binding on non-imprinted polymer (NIP) surfaces and an imprinting factor of 6.8 was achieved. The artemisinin imprinted polymers using o-PD as functional monomer have provided highly stable and effective binding cavities for artemisinin. Cross-reactivity studies with drug molecules showed that the MIPs are highly specific for artemisinin. The influence of matrix effect was further investigated both in artificial plant matrix and diluted human serum. The results revealed a high affinity of artemisinin-MIP with dissociation constant of 7.3 x 10(-9) M and with a detection limit of 0.01 mu M and 0.02 mu M in buffer and plant matrix, respectively. KW - Electro-synthesized molecularly imprinted polymer KW - o-Phenylenediamine KW - Artemisinin KW - Antimalarial drug detection KW - Electrochemical sensor Y1 - 2018 U6 - https://doi.org/10.1016/j.snb.2018.08.018 SN - 0925-4005 VL - 275 SP - 163 EP - 173 PB - Elsevier CY - Lausanne ER - TY - THES A1 - Tan, Li T1 - Synthesis, assembly and thermo-responsivity of polymer-functionalized magnetic cobalt nanoparticles T1 - Synthese, Assemblierung und Temperatur-Responsivität von Polymer-funktionalisierten magnetischen Cobalt Nanopartikeln N2 - This thesis mainly covers the synthesis, surface modification, magnetic-field-induced assembly and thermo-responsive functionalization of superparamagnetic Co NPs initially stabilized by hydrophobic small molecules oleic acid (OA) and trioctylphosphine oxide (TOPO), as well as the synthesis of both superparamagnetic and ferromagnetic Co NPs by using end-functionalized-polystyrene as stabilizer. Co NPs, due to their excellent magnetic and catalytic properties, have great potential application in various fields, such as ferrofluids, catalysis, and magnetic resonance imaging (MRI). Superparamagnetic Co NPs are especially interesting, since they exhibit zero coercivity. They get magnetized in an external magnetic field and reach their saturation magnetization rapidly, but no magnetic moment remains after removal of the applied magnetic field. Therefore, they do not agglomerate in the body when they are used in biomedical applications. Normally, decomposition of metallic precursors at high temperature is one of the most important methods in preparation of monodisperse magnetic NPs, providing tunability in size and shape. Hydrophobic ligands like OA, TOPO and oleylamine are often used to both control the growth of NPs and protect them from agglomeration. The as-prepared magnetic NPs can be used in biological applications as long as they are transferred into water. Moreover, their supercrystal assemblies have the potential for high density data storage and electronic devices. In addition to small molecules, polymers can also be used as surfactants for the synthesis of ferromagnetic and superparamagnetic NPs by changing the reaction conditions. Therefore, chapter 2 gives an overview on the basic concept of synthesis, surface modification and self-assembly of magnetic nanoparticles. Various examples were used to illustrate the recent work. The hydrophobic Co NPs synthesized with small molecules as surfactants limit their biological applications, which require a hydrophilic or aqueous environment. Surface modification (e.g., ligand exchange) is a general idea for either phase transition or surface-functionalization. Therefore, in chapter 3, a ligand exchange process was conducted to functionalize the surface of Co NPs. PNIPAM is one of the most popular smart polymers and its lower critical solution temperature (LCST) is around 32 °C, with a reversible change in the conformation structure between hydrophobic and hydrophilic. The novel nanocomposites of superparamagnetic Co NPs and thermo-responsive PNIPAM are of great interest. Thus, well-defined superparamagnetic Co NPs were firstly synthesized through the thermolysis of cobalt carbonyl by using OA and TOPO as surfactants. A functional ATRP initiator, containing an amine (as anchoring group) and a 2-bromopropionate group (SI-ATRP initiator), was used to replace the original ligands. This process is rapid and facial for efficient surface functionalization and afterwards the Co NPs can be dispersed into polar solvent DMF without aggregation. FT-IR spectroscopy showed that the TOPO was completely replaced, but a small amount of OA remained on the surface. A TGA measurement allowed the calculation of the grafting density of the initiator as around 3.2 initiator/nm2. Then, the surface-initiated ATRP was conducted for the polymerization of NIPAM on the surface of Co NPs and rendered the nanocomposites water-dispersible. A temperature-dependent dynamic light scattering study showed the aggregation behavior of PNIPAM-coated Co NPs upon heating and this process was proven to be reversible. The combination of superparamagnetic and thermo-responsive properties in these hybrid nanoparticles is promising for future applications e.g. in biomedicine. In chapter 4, the magnetic-field-induced assembly of superparamagnetic cobalt nanoparticles both on solid substrates and at liquid-air interface was investigated. OA- and TOPO-coated Co NPs were synthesized via the thermolysis of cobalt carbonyl and dispersed into either hexane or toluene. The Co NP dispersion was dropped onto substrates (e.g., TEM grid, silicon wafer) and at liquid-air (water-air or ethylene glycol-air) interface. Due to the attractive dipolar interaction, 1-D chains formed in the presence of an external magnetic field. It is known that the concentration and the strength of the magnetic field can affect the assembly behavior of superparamagnetic Co NPs. Therefore, the influence of these two parameters on the morphology of the assemblies was studied. The formed 1-D chains were shorter and flexible at either lower concentration of the Co NP dispersion or lower strength of the external magnetic field due to thermal fluctuation. However, by increasing either the concentration of the NP dispersion or the strength of the applied magnetic field, these chains became longer, thicker and straighter. The reason could be that a high concentration led to a high fraction of short dipolar chains, and their interaction resulted in longer and thicker chains under applied magnetic field. On the other hand, when the magnetic field increased, the induced moments of the magnetic nanoparticles became larger, which dominated over the thermal fluctuation. Thus, the formed short chains connected to each other and grew in length. Thicker chains were also observed through chain-chain interaction. Furthermore, the induced moments of the NPs tended to direct into one direction with increased magnetic field, thus the chains were straighter. In comparison between the assembly on substrates, at water-air interface and at ethylene glycol-air interface, the assembly of Co NPs in hexane dispersion at ethylene glycol-air interface showed the most regular and homogeneous chain structures due to the better spreading of the dispersion on ethylene glycol subphase than on water subphase and substrates. The magnetic-field-induced assembly of superparamagnetic nanoparticles could provide a powerful approach for applications in data storage and electronic devices. Chapter 5 presented the synthesis of superparamagnetic and ferromagnetic cobalt nanoparticles through a dual-stage thermolysis of cobalt carbonyl (Co2(CO)8) by using polystyrene as surfactant. The amine end-functionalized polystyrene surfactants with different molecular weight were prepared via atom transfer radical polymerization technique. The molecular weight determination of polystyrene was conducted by gel permeation chromatography (GPC) and matrix-assisted laser desorption/ionization time-of-flight (MALDI-ToF) mass spectrometry techniques. The results showed that, when the molecular weight distribution is low (Mw/Mn < 1.2), the measurement by GPC and MALDI-ToF MS provided nearly similar results. For example, the molecular weight of 10600 Da was obtained by MALDI-ToF MS, while GPC gave 10500 g/mol (Mw/Mn = 1.17). However, if the polymer is poly distributed, MALDI-ToF MS cannot provide an accurate value. This was exemplified for a polymer with a molecular weight of 3130 Da measured by MALDI-TOF MS, while GPC showed 2300 g/mol (Mw/Mn = 1.38). The size, size distribution and magnetic properties of the hybrid particles were different by changing either the molecular weight or concentration of the polymer surfactants. The analysis from TEM characterization showed that the size of cobalt nanoparticles stabilized with polystyrene of lower molecular weight (Mn = 2300 g/mol) varied from 12–22 nm, while the size with middle (Mn = 4500 g/mol) and higher molecular weight (Mn = 10500 g/mol) of polystyrene-coated cobalt nanoparticles showed little change. Magnetic measurements exhibited that the small cobalt particles (12 nm) were superparamagnetic, while larger particles (21 nm) were ferromagnetic and assembled into 1-D chains. The grafting density calculated from thermogravimetric analysis showed that a higher grafting density of polystyrene was obtained with lower molecular weight (Mn = 2300 g/mol) than those with higher molecular weight (Mn = 10500 g/mol). Due to the larger steric hindrance, polystyrene with higher molecular weight cannot form a dense shell on the surface of the nanoparticles, which resulted in a lower grafting density. Wide angle X-ray scattering measurements revealed the epsilon cobalt crystalline phases of both superparamagnetic Co NPs coated with polystyrene (Mn = 2300 g/mol) and ferromagnetic Co NPs coated with polystyrene (Mn = 10500 g/mol). Furthermore, a stability study showed that PS-Co NPs prepared with higher polymer concentration and polymer molecular weight exhibited a better stability. N2 - Im Rahmen dieser Arbeit wurden superparamagnetische Cobalt Nanopartikel (NP) synthetisiert, die Selbstassemblierung im Magnetfeld untersucht und die ursprünglichen Liganden Ölsäure (Englisch oleic acid, OA) und Trioctylphosphanoxid (TOPO) ersetzt, um eine Funktionalisierung der Nanopartikel mit einem Temperatur-responsiven Polymer zu erreichen. Außerdem wurden superparamagnetische und ferromagnetische Co NP mit Polystyrol als Stabilisator synthetisiert. Co NP haben aufgrund ihrer herausragenden magnetischen und katalytischen Eigenschaften viele potentielle Anwendungen beispielsweise als Ferrofluide, in der Katalyse und der Magnetresonanztomografie (Englisch magnetic resonance imaging, MRI). Besonders interessant sind dabei superparamagnetische Co NP, die in einem äußeren Magnetfeld magnetisiert werden, aber nach Entfernen des angelegten Magnetfelds keine Magnetisierung mehr aufweisen. Bei biomedizinischen Anwendungen aggregieren sie daher nicht im Körper. Hydrophobe Co NP, die von kleinen Molekülen stabilisiert werden, eignen sich nicht für biologische Anwendungen, für die ein hydrophiles oder wässriges Medium vonnöten ist. Kapitel 3 beschreibt einen Ligandenaustausch zur Funktionalisierung von Co Nanopartikeln und das Herstellen neuer Nanokomposite aus superparamagnetischen Co NP und Temperatur-responsivem PNIPAM. Zunächst wurden wohldefinierte superparamagnetische Co NP mit OA und TOPO als Stabilisatoren durch die Thermolyse von Cobalt Carbonyl synthetisiert. Die ursprünglichen Liganden wurden dann durch einen funktionalen Liganden mit einer Amingruppe (zum Binden an die Oberfläche) und einer 2 Brompropionat-Gruppe (Polymerisationsinitiator) ersetzt. Nach diesem schnellen und einfachen Prozess der Oberflächenfunktionalisierung können die Nanopartikel ohne Aggregation in dem polaren Lösungsmittel DMF dispergiert werden. Nach thermogravimetrischen Messungen konnte die Dichte der Initiatoren mit ungefähr 3,2 Initiatoren / nm2 berechnet werden. Anschließend wurde Oberflächen-initiierte ATRP zur Polymerisation von NIPAM durchgeführt. Temperatur-abhängige Messungen der dynamischen Lichtstreuung der nun in Wasser dispergierbaren Nanokomposite zeigte das reversible Aggregationsverhalten nach Erhitzen über 32 °C. Kapitel 4 behandelt die Untersuchung der Assemblierung von superparamagnetischen OA- und TOPO-stabilisierten Co NP im äußeren Magnetfeld sowohl auf festen Oberflächen als auch der Flüssigkeit-Luft Grenzfläche. Durch die anziehende dipolare Wechselwirkung bildeten sich im äußeren Magnetfeld 1-D Ketten. Der Einfluss der Konzentration der Dispersion und der Stärke des Magnetfelds auf die Morphologie der assemblierten Strukturen wurde untersucht. Bei niedrigerer Konzentration der Dispersion und geringerer Magnetfeldstärke bildeten sich kurze und flexible Ketten. Bei höherer Konzentration oder höherer Magnetfeldstärke wurden die Ketten länger, breiter und gerader. Andererseits sind die induzierten magnetischen Momente bei erhöhter Magnetfeldstärke größer und dominieren über die thermische Fluktuation. Daher verbinden sich die kurzen Ketten zu längeren, und dickere Ketten entstehen durch Interaktion benachbarter Ketten. Außerdem zeigen die induzierten Momente der NP verstärkt in die gleiche Richtung je größer das äußere Magnetfeld ist, weshalb die Ketten gerader werden. Im Vergleich der Assemblierung auf Substraten (TEM-Grids, Siliciumwafer), an der Wasser-Luft und Ethylenglycol-Luft Grenzfläche, zeigte die Assemblierung von Co NP aus Hexan-Dispersion an der Ethylenglycol-Luft Grenzfläche die geordnetsten und homogensten Strukturen. Kapitel 5 präsentierte die Synthese von superparamagnetischen und ferromagnetischen Cobalt Nanopartikeln durch die zwei-stufige Thermolyse von Cobalt Carbonyl (Co2(CO)8) mit Polystyrol als Stabilisator. Polystyrol Polymere mit Amin-Endgruppen wurden durch ATRP-Technik mit unterschiedlichen Molekulargewichten hergestellt. Die Größe, Größenverteilung und magnetischen Eigenschaften der hybriden Partikel haben sich mit dem Molekulargewicht und der Konzentration der Polymer-Stabilisatoren unterschieden. Eine Analyse mit Transmissionselektronenmikroskopie zeigte, dass die Größe der Co NP zwischen 12–22 nm variierte, wenn sie durch Polystyrol geringen Molekulargewichts (Mn = 2300 g/mol) stabilisiert wurden, während sich die Größe der Partikel mit Polystyrol mittleren (Mn = 4500 g/mol) und höheren (Mn = 10500 g/mol) Molekulargewichts kaum unterschied. Messungen der magnetischen Eigenschaften zeigten, dass die kleinen Cobalt Partikel (12 nm) superparamagnetisch waren, während größere Partikel (21 nm) ferromagnetisch waren und zu 1-D Ketten assemblierten. Die Dichte der Polymere auf der Oberfläche wurde nach einer thermogravimetrischen Analyse berechnet. Mit kleinem Molekulargewicht (Mn = 2300 g/mol) wurde eine höhere Dichte erreicht als mit hohem Molekulargewicht (Mn = 10500 g/mol). Durch eine stärker ausgeprägte sterische Hinderung kann ein Polymer hohen Molekulargewichts keine dichte Hülle um die Nanopartikel bilden. Das Vorliegen einer epsilon kristallinen Phase wurde durch Weitwinkel-Röntgenstreuung sowohl für superparamagnetische Co NP (mit PS Mn = 2300 g/mol) als auch ferromagnetische Co NP (mit PS Mn = 10500 g/mol) bestimmt. KW - magnetic nanoparticles KW - assembly KW - polymer KW - cobalt nanoparticles KW - magnetische Nanopartikel KW - Assemblierung KW - Polymer KW - Cobalt Nanopartikeln Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-418153 ER - TY - JOUR A1 - Tan, Li A1 - Liu, Bing A1 - Glebe, Ulrich A1 - Böker, Alexander T1 - Magnetic Field-Induced Assembly of Superparamagnetic Cobalt Nanoparticles on Substrates and at Liquid-Air Interface JF - Langmuir N2 - Superparamagnetic cobalt nanoparticles (Co NPs) are an interesting material for self-assembly processes because of their magnetic properties. We investigated the magnetic field-induced assembly of superparamagnetic cobalt nanoparticles and compared three different approaches, namely, the assembly on solid substrates, at water-air, and ethylene glycol-air interfaces. Oleic acid- and trioctylphosphine oxide-coated Co NPs were synthesized via a thermolysis of cobalt carbonyl and dispersed into either hexane or toluene. The Co NP dispersion was dropped onto different substrates (e.g., transmission electron microscopy (TEM) grid, silicon wafer) and onto liquid surfaces. Transmission electron microscopy (TEM), scanning force microscopy, optical microscopy, as well as scanning electron microscopy showed that superparamagnetic Co NPs assembled into one-dimensional chains in an external magnetic field. By varying the concentration of the Co NP dispersion (1-5 mg/mL) and the strength of the magnetic field (4-54 mT), the morphology of the chains changed. Short, thin, and flexible chain structures were obtained at low NP concentration and low strength of magnetic field, whereas they became long, thick and straight when the NP concentration and the magnetic field strength increased. In comparison, the assembly of Co NPs from hexane dispersion at ethylene glycol-air interface showed the most regular and homogeneous alignment, since a more efficient spreading could be achieved on ethylene glycol than on water and solid substrates. Y1 - 2018 U6 - https://doi.org/10.1021/acs.langmuir.8b02673 SN - 0743-7463 VL - 34 IS - 46 SP - 13993 EP - 14002 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Tan, Li A1 - Liu, Bing A1 - Siemensmeyer, Konrad A1 - Glebe, Ulrich A1 - Böker, Alexander T1 - Synthesis of thermo-responsive nanocomposites of superparamagnetic cobalt nanoparticlesipoly(N-isopropylacrylamide) JF - Journal of colloid and interface science N2 - Novel nanocomposites of superparamagnetic cobalt nanoparticles (Co NPs) and poly(N-isopropylacrylamide) (PNIPAM) were fabricated through surface-initiated atom-transfer radical polymerization (SI-ATRP). We firstly synthesized a functional ATRP initiator, containing an amine (as anchoring group) and a 2-bromopropionate group (SI-ATRP initiator). Oleic acid- and trioctylphosphine oxide-coated Co NPs were then modified with the initiator via ligand exchange. The process is facile and rapid for efficient surface functionalization and afterwards the Co NPs can be dispersed into polar solvent DMF without aggregation. Transmission electron microscopy, Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and dynamic light scattering measurements confirmed the success of ligand exchange. The following polymerization of NIPAM was conducted on the surface of Co NPs. Temperature-dependent dynamic light scattering study showed the responsive behavior of PNIPAM-coated Co NPs. The combination of superparamagnetic and thermo-responsive properties in these hybrid nanoparticles is promising for future applications e.g. in biomedicine. (C) 2018 Elsevier Inc. All rights reserved. KW - Nanoparticles KW - Superparamagnetic KW - Surface-initiated atom-transfer radical KW - polymerization KW - Responsivity Y1 - 2018 U6 - https://doi.org/10.1016/j.jcis.2018.04.074 SN - 0021-9797 SN - 1095-7103 VL - 526 SP - 124 EP - 134 PB - Elsevier CY - San Diego ER - TY - JOUR A1 - Tan, Li A1 - Liu, Bing A1 - Siemensmeyer, Konrad A1 - Glebe, Ulrich A1 - Böker, Alexander T1 - Synthesis of Polystyrene-Coated Superparamagnetic and Ferromagnetic Cobalt Nanoparticles JF - Polymers N2 - Polystyrene-coated cobalt nanoparticles (NPs) were synthesized through a dual-stage thermolysis of cobalt carbonyl (Co-2(CO)(8)). The amine end-functionalized polystyrene surfactants with varying molecular weight were prepared via atom-transfer radical polymerization technique. By changing the concentration of these polymeric surfactants, Co NPs with different size, size distribution, and magnetic properties were obtained. Transmission electron microscopy characterization showed that the size of Co NPs stabilized with lower molecular weight polystyrene surfactants (M-n = 2300 g/mol) varied from 12-22 nm, while the size of Co NPs coated with polystyrene of middle (M-n = 4500 g/mol) and higher molecular weight (M-n = 10,500 g/mol) showed little change around 20 nm. Magnetic measurements revealed that the small cobalt particles were superparamagnetic, while larger particles were ferromagnetic and self-assembled into 1-D chain structures. Thermogravimetric analysis revealed that the grafting density of polystyrene with lower molecular weight is high. To the best of our knowledge, this is the first study to obtain both superparamagnetic and ferromagnetic Co NPs by changing the molecular weight and concentration of polystyrene through the dual-stage decomposition method. KW - cobalt nanoparticles KW - polystyrene KW - superparamagnetic KW - ferromagnetic KW - molecular weight Y1 - 2018 U6 - https://doi.org/10.3390/polym10101053 SN - 2073-4360 VL - 10 IS - 10 PB - MDPI CY - Basel ER - TY - JOUR A1 - Tian, Guang-Zong A1 - Hu, Jing A1 - Zhang, Heng-Xi A1 - Rademacher, Christoph A1 - Zou, Xiao-Peng A1 - Zheng, Hong-Ning A1 - Xu, Fei A1 - Wang, Xiao-Li A1 - Linker, Torsten A1 - Yin, Jian T1 - Synthesis and conformational analysis of linear homo- and heterooligomers from novel 2-C-branched sugar amino acids (SAAs) JF - Scientific reports N2 - Sugar amino acids (SAAs), as biologically interesting structures bearing both amino and carboxylic acid functional groups represent an important class of multifunctional building blocks. In this study, we develop an easy access to novel SAAs in only three steps starting from nitro compounds in high yields in analytically pure form, easily available by ceric (IV) mediated radical additions. Such novel SAAs have been applied in the assembly of total nine carbopeptoids with the form of linear homo-and heterooligomers for the structural investigations employing circular dichroism (CD) spectroscopy, which suggest that the carbopeptoids emerge a well-extended, left (or right)-handed conformation similar to polyproline II (PPII) helices. NMR studies also clearly demonstrated the presence of ordered secondary structural elements. 2D-ROESY spectra were acquired to identify i+1NH <-> (C1H)-C-i, (C2H)-C-i correlations which support the conformational analysis of tetramers by CD spectroscopy. These findings provide interesting information of SAAs and their oligomers as potential scaffolds for discovering new drugs and materials. Y1 - 2018 U6 - https://doi.org/10.1038/s41598-018-24927-6 SN - 2045-2322 VL - 8 PB - Nature Publ. Group CY - London ER - TY - THES A1 - Tröger-Müller, Steffen T1 - Truly sustainable imidazolium ionics BT - towards expanding applicability in next-generation batteries Y1 - 2018 ER - TY - JOUR A1 - Tuncaboylu, Deniz Ceylan A1 - Friess, Fabian A1 - Wischke, Christian A1 - Lendlein, Andreas T1 - A multifunctional multimaterial system for on-demand protein release JF - Journal of controlled release N2 - In order to provide best control of the regeneration process for each individual patient, the release of protein drugs administered during surgery may need to be timely adapted and/or delayed according to the progress of healing/regeneration. This study aims to establish a multifunctional implant system for a local on-demand release, which is applicable for various types of proteins. It was hypothesized that a tubular multimaterial container kit, which hosts the protein of interest as a solution or gel formulation, would enable on-demand release if equipped with the capacity of diameter reduction upon external stimulation. Using devices from poly(epsilon-caprolactone) networks, it could be demonstrated that a shape-memory effect activated by heat or NIR light enabled on-demand tube shrinkage. The decrease of diameter of these shape-memory tubes (SMT) allowed expelling the payload as demonstrated for several proteins including SDF-1 alpha, a therapeutically relevant chemotactic protein, to achieve e.g. continuous release with a triggered add-on dosing (open tube) or an on-demand onset of bolus or sustained release (sealed tube). Considering the clinical relevance of protein factors in (stem) cell attraction to lesions and the progress in monitoring biomarkers in body fluids, such on-demand release systems may be further explored e.g. in heart, nerve, or bone regeneration in the future. KW - Shape-memory polymer KW - On-demand release KW - Proteins KW - Poly(epsilon-caprolactone) networks KW - Near infrared light triggered shape-recovery Y1 - 2018 U6 - https://doi.org/10.1016/j.jconrel.2018.06.022 SN - 0168-3659 SN - 1873-4995 VL - 284 SP - 240 EP - 247 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Turrini, Nikolaus G. A1 - Kroepfl, Nina A1 - Jensen, Kenneth Bendix A1 - Reiter, Tamara C. A1 - Francesconi, Kevin A. A1 - Schwerdtle, Tanja A1 - Kroutil, Wolfgang A1 - Kuehnelt, Doris T1 - Biosynthesis and isolation of selenoneine from genetically modified fission yeast JF - Metallomics : integrated biometal science N2 - Selenoneine, a naturally occurring form of selenium, is the selenium analogue of ergothioneine, a sulfur species with health relevance not only as a purported antioxidant but likely also beyond. Selenoneine has been speculated to exhibit similar effects. To study selenoneine's health properties as well as its metabolic transformation, the pure compound is required. Chemical synthesis of selenoneine, however, is challenging and biosynthetic approaches have been sought. We herein report the biosynthesis and isolation of selenoneine from genetically modified fission yeast Schizosaccharomyces pombe grown in a medium containing sodium selenate. After cell lysis and extraction with methanol, selenoneine was purified by three consecutive preparative reversed-phase HPLC steps. The product obtained at the mg level was characterised by high resolution mass spectrometry, NMR and HPLC/ICPMS. Biosynthesis was found to be a promising alternative to chemical synthesis, and should be suitable for upscaling to produce higher amounts of this important selenium species in the future. Y1 - 2018 U6 - https://doi.org/10.1039/c8mt00200b SN - 1756-5901 SN - 1756-591X VL - 10 IS - 10 SP - 1532 EP - 1538 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Uchida, Ryusuke A1 - Binet, Silvia A1 - Arora, Neha A1 - Jacopin, Gwenole A1 - Alotaibi, Mohammad Hayal A1 - Taubert, Andreas A1 - Zakeeruddin, Shaik Mohammed A1 - Dar, M. Ibrahim A1 - Graetzel, Michael T1 - Insights about the Absence of Rb Cation from the 3D Perovskite Lattice BT - Effect on the Structural, Morphological, and Photophysical Properties and Photovoltaic Performance JF - Small N2 - Efficiencies >20% are obtained from the perovskite solar cells (PSCs) employing Cs+ and Rb+ based perovskite compositions; therefore, it is important to understand the effect of these inorganic cations specifically Rb+ on the properties of perovskite structures. Here the influence of Cs+ and Rb+ is elucidated on the structural, morphological, and photophysical properties of perovskite structures and the photovoltaic performances of resulting PSCs. Structural, photoluminescence (PL), and external quantum efficiency studies establish the incorporation of Cs+ (x < 10%) but amply rule out the possibility of Rb-incorporation into the MAPbI(3) (MA = CH3NH3+) lattice. Moreover, morphological studies and time-resolved PL show that both Cs+ and Rb+ detrimentally affect the surface coverage of MAPbI(3) layers and charge-carrier dynamics, respectively, by influencing nucleation density and by inducing nonradiative recombination. In addition, differential scanning calorimetry shows that the transition from orthorhombic to tetragonal phase occurring around 160 K requires more thermal energy for the Cs-containing MAPbI(3) systems compared to the pristine MAPbI(3). Investigation including mixed halide (I/Br) and mixed cation A-cation based compositions further confirms the absence of Rb+ from the 3D-perovskite lattice. The fundamental insights gained through this work will be of great significance to further understand highly promising perovskite compositions. KW - cation miscibility KW - cesium cation KW - perovskite solar cells KW - rubidium cation KW - X-ray diffraction Y1 - 2018 U6 - https://doi.org/10.1002/smll.201802033 SN - 1613-6810 SN - 1613-6829 VL - 14 IS - 36 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Utecht, Manuel Martin A1 - Gaebel, Tina A1 - Klamroth, Tillmann T1 - Desorption induced by low energy charge carriers on Si(111)-7 x 7 BT - first principles molecular dynamics for benzene derivates JF - Journal of computational chemistry : organic, inorganic, physical, biological N2 - We use clusters for the modeling of local ion resonances caused by low energy charge carriers in STM-induced desorption of benzene derivates from Si(111)-7 x 7. We perform Born-Oppenheimer molecular dynamics for the charged systems assuming vertical transitions to the charged states at zero temperature, to rationalize the low temperature activation energies, which are found in experiment for chlorobenzene. Our calculations suggest very similar low temperature activation energies for toluene and benzene. For the cationic resonance transitions to physisorption are found even at 0 K, while the anion remains chemisorbed during the propagations. Further, we also extend our previous static quantum chemical investigations to toluene and benzene. In addition, an in depth analysis of the ionization potentials and electron affinities, which are used to estimate resonance energies, is given. KW - Born-Oppenheimer MD KW - STM-induced reactions KW - cluster models KW - Si(111)-7x7 Y1 - 2018 U6 - https://doi.org/10.1002/jcc.25607 SN - 0192-8651 SN - 1096-987X VL - 39 IS - 30 SP - 2517 EP - 2525 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Vacogne, Charlotte Dominique A1 - Wei, Chunxiang A1 - Tauer, Klaus A1 - Schlaad, Helmut T1 - Self-assembly of alpha-helical polypeptides into microscopic and enantiomorphic spirals JF - Journal of the american chemical society N2 - Helical structures are ubiquitous in biological materials and often serve a structural purpose. Bioinspired helical materials can be challenging to synthesize and rarely reach the degree of hierarchy of their natural counterparts. Here we report the first example of particles synthesized by direct emulsification of polypeptides found to display spiral morphologies in the dry state. The polypeptides were alpha-helical homo- and copolypeptides of gamma-benzyl glutamate and allylglycine. The chirality of the spirals was controlled by the chirality of the alpha-helices. Notably, right-handed alpha-helical polypeptides (rich in 1, residues) produced clockwise spirals, whereas left-handed alpha-helical polypeptides (rich in D residues) produced the enantiomorphs, i.e., counterclockwise spirals. The disruption of the alpha-helical conformation by the introduction of chiral defects led to less regular spirals and in some cases their suppression. A hypothesis for the transmission of helicity and chirality from a molecular to a higher hierarchical level, involving fibril bundling of coiled alpha-helices, is proposed. Y1 - 2018 U6 - https://doi.org/10.1021/jacs.8b06503 SN - 0002-7863 VL - 140 IS - 36 SP - 11387 EP - 11394 PB - American Chemical Society CY - Washington ER - TY - THES A1 - Villatoro Leal, José Andrés T1 - A combined approach for the analysis of biomolecules using IR-MALDI ion mobility spectrometry and molecular dynamics simulations of peptide ions in the gas phase T1 - Kombinierter Einsatz von IR-MALDI Ionenmobilitätsspektrometrie und Simulationen der Molekulardynamik von Peptidionen in der Gasphase zur Analyse von Biomolekülen N2 - The aim of this doctoral thesis was to establish a technique for the analysis of biomolecules with infrared matrix-assisted laser dispersion (IR-MALDI) ion mobility (IM) spectrometry. The main components of the work were the characterization of the IR-MALDI process, the development and characterization of different ion mobility spectrometers, the use of IR-MALDI-IM spectrometry as a robust, standalone spectrometer and the development of a collision cross-section estimation approach for peptides based on molecular dynamics and thermodynamic reweighting. First, the IR-MALDI source was studied with atmospheric pressure ion mobility spectrometry and shadowgraphy. It consisted of a metal capillary, at the tip of which a self-renewing droplet of analyte solution was met by an IR laser beam. A relationship between peak shape, ion desolvation, diffusion and extraction pulse delay time (pulse delay) was established. First order desolvation kinetics were observed and related to peak broadening by diffusion, both influenced by the pulse delay. The transport mechanisms in IR-MALDI were then studied by relating different laser impact positions on the droplet surface to the corresponding ion mobility spectra. Two different transport mechanisms were determined: phase explosion due to the laser pulse and electrical transport due to delayed ion extraction. The velocity of the ions stemming from the phase explosion was then measured by ion mobility and shadowgraphy at different time scales and distances from the source capillary, showing an initially very high but rapidly decaying velocity. Finally, the anatomy of the dispersion plume was observed in detail with shadowgraphy and general conclusions over the process were drawn. Understanding the IR-MALDI process enabled the optimization of the different IM spectrometers at atmospheric and reduced pressure (AP and RP, respectively). At reduced pressure, both an AP and an RP IR-MALDI source were used. The influence of the pulsed ion extraction parameters (pulse delay, width and amplitude) on peak shape, resolution and area was systematically studied in both AP and RP IM spectrometers and discussed in the context of the IR-MALDI process. Under RP conditions, the influence of the closing field and of the pressure was also examined for both AP and RP sources. For the AP ionization RP IM spectrometer, the influence of the inlet field (IF) in the source region was also examined. All of these studies led to the determination of the optimal analytical parameters as well as to a better understanding of the initial ion cloud anatomy. The analytical performance of the spectrometer was then studied. Limits of detection (LOD) and linear ranges were determined under static and pulsed ion injection conditions and interpreted in the context of the IR-MALDI mechanism. Applications in the separation of simple mixtures were also illustrated, demonstrating good isomer separation capabilities and the advantages of singly charged peaks. The possibility to couple high performance liquid chromatography (HPLC) to IR-MALDI-IM spectrometry was also demonstrated. Finally, the reduced pressure spectrometer was used to study the effect of high reduced field strength on the mobility of polyatomic ions in polyatomic gases. The last focus point was on the study of peptide ions. A dataset obtained with electrospray IM spectrometry was characterized and used for the calibration of a collision cross-section (CCS) determination method based on molecular dynamics (MD) simulations at high temperature. Instead of producing candidate structures which are evaluated one by one, this semi-automated method uses the simulation as a whole to determine a single average collision cross-section value by reweighting the CCS of a few representative structures. The method was compared to the intrinsic size parameter (ISP) method and to experimental results. Additional MD data obtained from the simulations was also used to further analyze the peptides and understand the experimental results, an advantage with regard to the ISP method. Finally, the CCS of peptide ions analyzed by IR-MALDI were also evaluated with both ISP and MD methods and the results compared to experiment, resulting in a first validation of the MD method. Thus, this thesis brings together the soft ionization technique that is IR-MALDI, which produces mostly singly charged peaks, with ion mobility spectrometry, which can distinguish between isomers, and a collision cross-section determination method which also provides structural information on the analyte at hand. N2 - Das Ziel dieser Arbeit war die Zusammenführung der schonende Ionisationsquelle Infrared Matrix-Assisted Laser Dispersion Ionization (IR-MALDI), der Isomer-diskriminierende Ionenmobilitätsspektrometrie und einer neuartigen, auf Molecular Dynamics (MD) Simulationen basierte Berechnungsmethode für Stoßquerschnitte. Der erste Schritt war die Charakterisierung des Flüssigkeitsdispersionsphänomens in IR-MALDI: Zwei verschiedenen Ionentransportmechanismen wurden nachgewiesen und weiter studiert. Die Beziehung zwischen Peakform, Diffusion, Desolvatation und Ionen Extraktionspuls wurde beschrieben. Die Geschwindigkeit der Ionen, die aus dem Dispersionsphänomen stammen, wurde durch Ionenmobilitätsspektrometrie und Shadowgraphie untersucht. Shadowgraphie hat ebenfalls das Verhalten des Dispersionsphänomens erläutert. Eine hohe, schnell abklingende initielle Geschwindigkeit wurde beobachtet. Das Verständnis des IR-MALDI Verfahrens ermöglichte die Optimierung der verschiedenen Ionenmobilität (IM) Spektrometer zum analytischen Zweck. Eine Atmosphärendruck- und zwei Niederdruckvariante von IM Spektrometern wurden mit gepulster Ionenextraktion genutzt. Die Pulsparameter (Pulsverzögerung, ‑breite, -höhe) und verschiedene elektrische Felder an unterschiedlichen Stellen der Spektrometer wurden systematisch variiert. Deren Einfluss auf die Peakauflösung und -fläche wurde untersucht und im Rahmen des IR-MALDI Verfahrens erklärt. Das Verständnis der Anatomie der Anfangsionenwolke wurde ebenfalls durch diese Experimente vertieft. Die analytische Leistungsfähigkeit eines IM-Spektrometers wurde dann untersucht. Nachweisgrenzen und lineare Bereiche wurden bestimmt und in Zusammenhang mit dem IR-MALDI Verfahren interpretiert. Anhand der Trennung von Isomeren und einfachen Mischungen wurde die Anwendung dieser Technik demonstriert und ihre Vorteile, die Detektion einfachgeladener Ionen und die Möglichkeit der HPLC-Kopplung (High Performance Liquid Chromatography), aufgezeigt. Mit dem Niederdruckspektrometer wurde der Einfluss hoher reduzierter Feldstärken auf die Ionenmobilität von polyatomische Ionen in polyatomische Gasen untersucht. Der letzte Schwerpunkt war die Charakterisierung von Peptidionen. Die Peptiden wurden mit Elektrospray (ESI) IM-Spektrometrie vermessen. Der hieraus erhaltene Datensatz diente zur Etablierung einer Stoßquerschnitt Berechnungsmethode mittels MD. Anstatt verschiedener Kandidat-Strukturen und deren Stoßquerschnitte, ergibt diese neuartige semi-automatisierte Methode einen einzigen, gemittelten Stoßquerschnitt. Die MD Methode wurde dann mit einer anderen, einfacheren Methode und mit den experimentellen Ergebnissen von ESI und IR-MALDI-IM Spektrometrie verglichen. Zudem wurde der Zusammenhang zwischen Ladungszustands- und Stoßquerschnittsdifferenzen zwischen den Peptiden untersucht. Weitere Strukturelle Informationen konnten aus den Simulationen extrahiert, und zur Charakterisierung der Peptiden verwendet werden. KW - Ion mobility spectrometry KW - Molecular dynamics KW - IR-MALDI KW - Peptides KW - Shadowgraphy KW - Liquid dispersion KW - Ionenmobilitätsspektrometrie KW - Molekulardynamik KW - Collision cross-section KW - IR-MALDI KW - Peptiden KW - Shadowgraphie KW - Stoßquerschnitt KW - Flüssigkeitszerstäubung Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-419723 ER - TY - JOUR A1 - Vishnevetskaya, Natalya S. A1 - Hildebrand, Viet A1 - Dyakonova, Margarita A. A1 - Niebuur, Bart-Jan A1 - Kyriakos, Konstantinos A1 - Raftopoulos, Konstantinos N. A1 - Di, Zhenyu A1 - Müller-Buschbaum, Peter A1 - Laschewsky, Andre A1 - Papadakis, Christine M. T1 - Dual orthogonal switching of the "Schizophrenic" self-assembly of diblock copolymers JF - Macromolecules : a publication of the American Chemical Society N2 - Based on diblock copolymers, a pair of "schizophrenic" micellar systems is designed by combining a nonionic and thermoresponsive block with a zwitterionic block, which is thermoresponsive and salt-sensitive. The nonionic block is poly(N-isopropylacrylamide) (PNIPAM) or poly(N-isopropylmethacrylamide) (PNIPMAM) and exhibits a lower critical solution temperature (LCST) behavior in aqueous solution. The zwitterionic block is a polysulfobetaine, i.e., poly(4((3-methacrylamidopropyl)dimethylammonio)butane-1-sulfonate) (PSBP), and has an upper critical solution temperature (UCST) behavior with the clearing point decreasing with increasing salt concentration. The PSBP-b-PNIPAM and PSBP-b-PNIPMAM diblock copolymers are prepared by successive reversible addition-fragmentation chain transfer (RAFT) polymerizations. The PSBP block is chosen such that the clearing point of the homopolymer is significantly higher in pure water than the cloud point of PNIPAM or PNIPMAM. Using turbidimetry, H-1 NMR, and small-angle neutron scattering, we investigate the overall phase behavior as well as the structure and interaction between the micelles and the intermediate phase, both in salt-free D2O and in 0.004 M NaBr in D2O in a wide temperature range. We find that PSBP-b-PNIPAM at 50 g L-1 in salt-free D2O is turbid in the entire temperature range. It forms spherical micelles below the cloud point of PNIPAM and cylindrical micelles above. Similar behavior is observed for PSBP-b-PNIPMAM at 50 g L-1 in salt-free D2O with a slight and smooth increase of the light transmission below the cloud point of PNIPMAM and an abrupt decrease above. Upon addition of 0.004 M NaBr, the UCST-type cloud point of the PSBP-block is notably decreased, and an intermediate regime is encountered below the cloud point of PNIPMAM, where the light transmission is slightly enhanced. In this regime, the polymer solution exhibits behavior typical for polyelectrolyte solutions. Thus, double thermosensitive and salt-sensitive behavior with "schizophrenic" micelle formation is found, and the width of the intermediate regime, where both blocks are hydrophilic, can be tuned by the addition of electrolyte. Y1 - 2018 U6 - https://doi.org/10.1021/acs.macromol.8b00096 SN - 0024-9297 SN - 1520-5835 VL - 51 IS - 7 SP - 2604 EP - 2614 PB - American Chemical Society CY - Washington ER - TY - THES A1 - Vogel, Stefanie T1 - Sequence dependency of photon and electron induced DNA strand breaks T1 - Sequenzabhängigkeit von photonen-und elektroneninduzierten DNA Strangbrüchen N2 - Deoxyribonucleic acid (DNA) is the carrier of human genetic information and is exposed to environmental influences such as the ultraviolet (UV) fraction of sunlight every day. The photostability of the DNA against UV light is astonishing. Even if the DNA bases have a strong absorption maximum at around 260 nm/4.77 eV, their quantum yield of photoproducts remains very low 1. If the photon energies exceed the ionization energy (IE) of the nucleobases ( ̴ 8-9 eV) 2, the DNA can be severely damaged. Photoexcitation and -ionization reactions occur, which can induce strand breaks in the DNA. The efficiency of the excitation and ionization induced strand breaks in the target DNA sequences are represented by cross sections. If Si as a substrate material is used in the VUV irradiation experiments, secondary electrons with an energy below 3.6 eV are generated from the substrate. This low energy electrons (LEE) are known to induce dissociative electron attachment (DEA) in DNA and with it DNA strand breakage very efficiently. LEEs play an important role in cancer radiation therapy, since they are generated secondarily along the radiation track of ionizing radiation. In the framework of this thesis, different single stranded DNA sequences were irradiated with 8.44 eV vacuum UV (VUV) light and cross sections for single strand breaks (SSB) were determined. Several sequences were also exposed to secondary LEEs, which additionally contributed to the SSBs. First, the cross sections for SSBs depending on the type of nucleobases were determined. Both types of DNA sequences, mono-nucleobase and mixed sequences showed very similar results upon VUV radiation. The additional influence of secondarily generated LEEs resulted in contrast in a clear trend for the SSB cross sections. In this, the polythymine sequence had the highest cross section for SSBs, which can be explained by strong anionic resonances in this energy range. Furthermore, SSB cross sections were determined as a function of sequence length. This resulted in an increase in the strand breaks to the same extent as the increase in the geometrical cross section. The longest DNA sequence (20 nucleotides) investigated in this series, however, showed smaller cross section values for SSBs, which can be explained by conformational changes in the DNA. Moreover, several DNA sequences that included the radiosensitizers 5-Bromouracil (5BrU) and 8-Bromoadenine (8BrA) were investigated and the corresponding SSB cross sections were determined. It was shown that 5BrU reacts very strongly to VUV radiation leading to high strand break yields, which showed in turn a strong sequence-dependency. 8BrA, on the other hand, showed no sensitization to the applied VUV radiation, since almost no increase in strand breakage yield was observed in comparison to non-modified DNA sequences. In order to be able to identify the mechanisms of radiation damage by photons, the IEs of certain DNA sequences were further explored using photoionization tandem mass spectrometry. By varying the DNA sequence, both the IEs depending on the type of nucleobase as well as on the DNA strand length could be identified and correlated to the SSB cross sections. The influence of the IE on the photoinduced reaction in the brominated DNA sequences could be excluded. N2 - Desoxyribonukleinsäure (DNA) ist als Träger der menschlichen Erbinformation täglich vielen Einflüssen ausgesetzt. Diese Einflüsse können Teil unserer Umwelt sein, wie der ultraviolette (UV) Anteil des Sonnenlichts. Die Photostabilität der DNA gegen UV-Licht ist erstaunlich, denn trotz eines starkes Absorptionsmaximum der DNA-Basen bei etwa 260 nm/4,77 eV, bleibt ihre Quantenausbeute an Photoprodukten sehr gering 1. Überschreiten die Photonenenergien die Ionisationsenergie (IE) der Nukleinbasen ( ̴ 8-9 eV) 2, kann die DNA schwer geschädigt werden. Es treten Anregungs- und Ionisierungsreaktionen auf, die zu Strangbrüchen in der DNA führen. Die Effizienz der induzierten Strangbrüche in den untersuchten DNA-Sequenzen wird durch Wirkungsquerschnitte dargestellt. Wird in den Bestrahlungsexperimenten Silizium als Substratmaterial verwendet, werden aus dem Substrat zusätzliche Sekundärelektronen mit einer Energie unter 3,6 eV erzeugt, die weiteren Schaden an der DNA verursachen. Diese niederenergetischen Elektronen (LEE) sind dafür bekannt, dissoziative Elektronenanlagerung (DEA) und damit Strangbrüche in der DNA zu erzeugen. LEEs entstehen sekundär entlang des Strahlungsweges von ionisierender Strahlung im biologischen Gewebe, wenn in der Behandlung der Krankheit Krebs Strahlentherapie eingesetzt wird. Im Rahmen dieser Arbeit wurden verschiedene Einzelstrang-DNA-Sequenzen mit 8.44 eV Vakuum-UV (VUV) Licht bestrahlt und Wirkungsquerschnitte für Einzel-strangbrüche (SSB) bestimmt. Ein Teil der Sequenzen wurde außerdem sekundär erzeugten LEEs ausgesetzt, die einen zusätzlichen Beitrag zu den SSBs liefern. Als erstes wurde der Wirkungsquerschnitt für SSBs in Abhängigkeit der Nukleinbasen bestimmt. Hierbei weisen sowohl die DNA Sequenzen, die nur ein Sorte an Nukleinbasen besitzen als auch die gemischte Sequenzen sehr ähnliche Werte auf. Durch den zusätzlichen Einfluss der LEEs hat sich wiederum für die DNA Sequenzen mit nur einer Sorte an Nukleinbasen ein stark ausgeprägter Trend gezeigt. Die Polythymin-Sequenz weist den höchsten Wirkungsquerschnitt für SSBs auf, was durch ausgeprägte anionische Resonanzen in diesem Energiebereich begründet werden kann. Des Weiteren wurden Wirkungsquerschnitte für SSBs in Abhängigkeit Sequenzlänge ermittelt. Dabei ergab sich eine Erhöhung der SSBs im gleichen Maße wie die Vergrößerung des geometrischen Wirkungsquerschnitts. Die längste DNA Sequenz (20 Nukleotide), die in dieser Reihe untersucht wurde, zeigte hingegen kleinere Werte für den SSB Wirkungsquerschnitt, was durch Konformationsänderungen in der DNA erklärt werden kann. Einige der untersuchten DNA Sequenzen wurden zusätzlich mit den Radiosensibilisatoren 5-Bromouracil (5BrU) und 8-Bromoadenine (8BrA) modifiziert und entsprechende SSB Wirkungsquerschnitte bestimmt. Hierbei hat sich gezeigt, dass 5BrU mittels einer hohen Strangbruchausbeute sehr stark auf VUV Strahlung reagiert, wobei das Ausmaß der Reaktion stark sequenzabhängig ist. 8BrA hingegen, weist keine Sensibilisierung gegenüber der verwendeten VUV Strahlung auf, da keine Erhöhung der Strangbruchausbeute gegenüber unmodifizierten DNA Sequenzen ersichtlich ist. Um die Mechanismen der Strahlenschädigung durch Photonen besser einschätzen zu können, wurden zusätzlich die IEs bestimmter DNA Sequenzen mit Hilfe der Photoionisations-Tandem-Massenspektrometrie untersucht. Durch Variation der DNA-Sequenzen konnte sowohl ein Trend der IEs in Abhängigkeit der Nukleinbasen und der DNA-Stranglänge identifiziert und als auch eine Abhängigkeit der Reaktivität von 5BrU von seinem IE in der entsprechenden DNA Sequenz ausgeschlossen werden. Die IE Trends und die Wirkungsquerschnitte für SSBs wurden abschließend in Korrelation gebracht. KW - DNA KW - photo ionization KW - dissociative electron attachment KW - DNA origami KW - radiosensitizer KW - ionization energy KW - tandem mass spectrometry KW - DNS KW - Photoionisation KW - Dissoziative Elektronenanlagerung KW - DNA Origami KW - Radiosensibilisator KW - Ionisierungsenergie KW - Tandemmassenspektrometrie Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-419669 ER - TY - THES A1 - Walther, Sebastian T1 - Funktionalisierung von Ölsäuremethylester und Alkydharzen für die photoinduzierte radikalische Polymerisation im UV Bereich N2 - Die vorliegende Arbeit behandelt die Synthese und Charakterisierung von funktionalisierten Alkydharzen und die photoinduzierte Polymerisation dieser unter Einsatz einer Quecksilberdampflampe oder einer UV LED mit unterschiedlicher Lichtintensität. Der Fokus dieser Arbeit bestand in der gezielten Substitution der internalen Doppelbindungen der Fettsäureester durch reaktivere Gruppen, wie Acrylate oder Methacrylate, welche für Alkydharze in dieser Form so in der Literatur nicht beschrieben sind. Untersuchungen des Polymerisationsverhaltens dieser funktionalisierten Harze wurden mit der Photo DSC durchgeführt, wobei Bis – (4 – methoxybenzoyl) diethylgermanium als Photoinitiator diente. Die Ergebnisse haben gezeigt, dass die Harze radikalisch polymerisiert werden können und eine geringere Abhängigkeit von der Umgebungsatmosphäre (Luftsauerstoff bzw. Stickstoff) vorliegt. Dies ist so in der Literatur für funktionalisierte Alkydharze nicht bekannt. Abmischungen von unterschiedlichen Monomeren und funktionalisierten Harzen bewirkten eine Steigerung der Viskosität sowie eine Verringerung der Sauerstoffinhibierung im Zuge der photoinduzierten Polymerisation unter Luftsauerstoff für die Quecksilberdampflampe und der UV LED. Zur Untersuchung der sauerstoffinhibierenden Wirkung der Harze sind Synthesen unterschiedlicher, funktionalisierter Ölsäuremethylester als Modellsubstanzen durchgeführt worden. Ein verbessertes Polymerisationsverhalten und eine geringe Abhängigkeit von der Umgebungsatmosphäre konnte für die Modelle nachgewiesen werden. Zur Aufklärung des verbesserten Polymerisationsverhaltens sind gezielt Substituenten (Imidazol, Brom, Alkohol, Acetat) in den funktionalisierten Ölsäuremethylester eingebaut worden, um den Einfluss dieser aufzuzeigen. Im Rahmen dieser Synthesen sind neuartige Strukturen synthetisiert worden, welche so in der Literatur nicht beschrieben sind. Die Gegenüberstellung der Polymerisationszeit, der Umsatz der (Meth-)Acrylatgruppen sowie die Zeit zum Erreichen der maximalen Polymerisationsgeschwindigkeit unter Verwendung von unterschiedlichen UV Lichtquellen hat einen Einfluss der Substituenten auf das Polymerisationsverhalten gezeigt. N2 - The present work deals with the synthesis and characterization of functionalized alkyl resins and the photoinduced polymerization of them with different UV light sources. The focus of this work was the targeted substitution of the internal double bonds of fatty acid esters by more reactive groups such as acrylates or methacrylates, which are not described in the literature for alkyd resins in this form. Differences in the basic polymerizability of these functionalized resins were carried out with the Photo DSC, with Bis – (4 – methoxybenzoyl) diethylgermane serving as the photoinitiator. The results showed that the resins could be radically polymerized and also had a lower dependence on the ambient atmosphere. This is not described in the literature for functionalized alkyd resins. Blends of different monomers and the functionalized resins also showed that in addition to the increase in viscosity and the polymerizability of the monomers was improved under atmospheric oxygen. The reference used was methyl oleate, which had been functionalized via the same routes of synthesis and polymerized photochemically. In the context of these syntheses, novel monomers have been synthesized which are thus unknown in the literature.
The reference substances confirmed the behavior of the functionalized resins and showed improved polymerization behavior under atmospheric oxygen. To elucidate these properties, different functionalized methyl oleate have been synthesized to investigate the influence of the substituents on the polymerizability under atmospheric oxygen. In particular, the polymerization time, the conversion of the (meth) acrylate groups and the time to reach the maximum polymerization rate played a decisive role. T2 - Functionalization of methyl oleate and alkyd resins for the photoinduced radical polymerization in the UV region KW - UV KW - Alkydharze KW - Fettsäuren KW - Funktionalisierte Ölsäuremethylester KW - Polymerisation KW - Druckfarben KW - Alkyd resin KW - printing inks KW - fatty acids KW - functionalized methyl oleate KW - polymerization KW - UV Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-421467 ER - TY - THES A1 - Wang, Li T1 - Reprogrammable, magnetically controlled polymer actuators T1 - Reprogrammierbar, magnetisch gesteuerte Polymeraktuatoren N2 - Polymeric materials, which can perform reversible shape changes after programming, in response to a thermal or electrical stimulation, can serve as (soft) actuating components in devices like artificial muscles, photonics, robotics or sensors. Such polymeric actuators can be realized with hydrogels, liquid crystalline elastomers, electro-active polymers or shape-memory polymers by controlling with stumuli such as heat, light, electrostatic or magnetic field. If the application conditions do not allow the direct heating or electric stimulation of these smart devices, noncontact triggering will be required. Remotely controlled actuation have been reported for liquid crystalline elastomer composites or shape-memory polymer network composites, when a persistent external stress is applied during inductive heating in an alternating magnetic field. However such composites cannot meet the demands of applications requiring remotely controlled free-standing motions of the actuating components. The current thesis investigates, whether a reprogrammable remotely controlled soft actuator can be realized by magneto-sensitive multiphase shape-memory copolymer network composites containing magnetite nanoparticles as magneto-sensitive multivalent netpoints. A central hypothesis was that a magnetically controlled two-way (reversible bidirectional) shape-memory effect in such nanocomposites can be achieved without application of external stress (freestanding), when the required orientation of the crystallizable actuation domains (ADs) can be ensured by an internal skeleton like structure formed by a second crystallizable phase determing the samples´s geometry, while magneto-sensitive iron oxide nanoparticles covalently integrated in the ADs allow remote temperature control. The polymer matrix of these composites should exhibit a phase-segregated morphology mainly composed of cyrstallizable ADs, whereby a second set of higher melting crystallites can take a skeleton like, geometry determining function (geometry determining domains, GDs) after programming of the composite and in this way the orientation of the ADs is established and maintained during actuation. The working principle for the reversible bidirectional movements in the multiphase shape-memory polymer network composite is related to a melting-induced contraction (MIC) during inductive heating and the crystallization induced elongation (CIE) of the oriented ADs during cooling. Finally, the amount of multivalent magnetosensitive netpoints in such a material should be as low as possible to ensure an adequate overall elasticity of the nanocomposite and at the same time a complete melting of both ADs and GDs via inductive heating, which is mandatory for enabling reprogrammability. At first, surface decorated iron oxide nanoparticles were synthesized and investigated. The coprecipitation method was applied to synthesize magnetic nanoparticles (mNPs) based on magnetite with size of 12±3 nm and in a next step a ring-opening polymerization (ROP) was utilized for covalent surface modification of such mNPs with oligo(ϵ-caprolactone) (OCL) or oligo(ω-pentadecalactone) (OPDL) via the “grafting from” approach. A successful coating of mNPs with OCL and OPDL was confirmed by differential scanning calorimetry (DSC) experiments showing melting peaks at 52±1 °C for mNP-OCL and 89±1 °C for mNP-OPDL. It was further explored whether two-layered surface decorated mNPs, can be prepared via a second surface-initiated ROP of mNP-OCL or mNP-OPDL with ω-pentadecalactone or ϵ-caprolactone. The observation of two distinct melting transitions in DSC experiments as well as the increase in molecular weight of the detached coatings determined by GPC and 1H-NMR indicated a successful synthesis of the twolayered nanoparticles mNP-OCL-OPDL and mNP-OPDL-OCL. In contrast TEM micrographs revealed a reduction of the thickness of the polymeric coating on the nanoparticles after the second ROP, indicating that the applied synthesis and purification required further optimization. For evaluating the impact of the dispersion of mNPs within a polymer matrix on the resulting inductive heating capability of composites, plain mNPs as well as OCL coated magnetite nanoparticles (mNP-OCLs) were physically incorporated into crosslinked poly(ε-caprolactone) (PCL) networks. Inductive heating experiments were performed with both networks cPCL/mNP and cPCL/mNP-OCL in an alternating magnetic field (AMF) with a magnetic field strength of H = 30 kA·m-1. Here a bulk temperature of Tbulk = 74±2 °C was achieved for cPCL/mNP-OCL, which was almost 20 °C higher than the melting transition of the PCL-based polymer matrix. In contrast, the composite with plain mNPs could only reach a Tbulk of 48±2 °C, which is not sufficient for a complete melting of all PCL crystallites as required for actuation. The inductive heating capability of a multiphase copolymer nanocomposite network (designed as soft actuators) containing surface decorated mNPs as covalent netpoints was investigated. Such composite was synthesized from star-shaped OCL and OPDL precursors, as well as mNP-OCLs via reaction with HDI. The weight ratio of OPDL and OCL in the starting reaction mixture was 15/85 (wt%/wt%) and the amount of iron oxide in the nanocomposite was 4 wt%. DSC experiments revealed two well separated melting and crystallization peaks confirming the required phase-segregated morphology in the nanocomposite NC-mNP-OCL. TEM images could illustrate a phase-segregated morphology of the polymer matrix on the microlevel with droplet shaped regions attributed to the OPDL domains dispersed in an OCL matrix. The TEM images could further demonstrate that the nanoparticulate netpoints in NC-mNP-OCL were almost homogeneously dispersed within the OCL domains. The tests of the inductive heating capability of the nanocomposites at a magnetic field strength of Hhigh = 11.2 kA·m-1 revealed a achievable plateau surface temperature of Tsurf = 57±1 °C for NC-mNP-OCL recorded by an infrared video camera. An effective heat generation constant (̅P) can be derived from a multi-scale model for the heat generation, which is proportional to the rate of heat generation per unit volume of the sample. NC-mNP-OCL with homogeneously dispersed mNP-OCLs exhibited a ̅P value of 1.04±0.01 K·s- 1 at Hhigh, while at Hreset = 30.0 kA·m-1 a Tsurf of 88±1 °C (where all OPDL related crystallite are molten) and a ̅P value of 1.93±0.02 K·s-1 was obtained indicating a high magnetic heating capability of the composite. The free-standing magnetically-controlled reversible shape-memory effect (mrSME) was explored with originally straight nanocomposite samples programmed by bending to an angle of 180°. By switching the magnetic field on and off the composite sample was allowed to repetitively heat to 60 °C and cool to the ambient temperature. A pronounced mrSME, characterized by changes in bending angle of Δϐrev = 20±3° could be obtained for a composite sample programmed by bending when a magnetic field strength of Hhigh = 11.2 kA·m-1 was applied in a multi-cyclic magnetic bending experiment with 600 heating-cooling cycles it could be shown that the actuation performance did not change with increasing number of test cycles, demonstrating the accuracy and reproducibility of this soft actuator. The degree of actuation as well as the kinetics of the shape changes during heating could be tuned by variation of the magnetic filed strength between Hlow and Hhigh or the magnetic field exposure time. When Hreset = 30.0 kA·m-1 was applied the programmed geometry was erased and the composite sample returned to it´s originally straight shape. The reprogrammability of the nanocomposite actuators was demonstrated by one and the same test specimen first exhibiting reversible angle changes when programmed by bending, secondly reprogrammed to a concertina, which expands upon inductive heating and contracts during cooling and finally reprogrammed to a clip like shape, which closes during cooling and opens when Hhigh was applied. In a next step the applicability of the presented remote controllable shape-memory polymer actuators was demonstrated by repetitive opening and closing of a multiring device prepared from NC-mNP-OCL, which repetitively opens and closes when a alternating magnetic field (Hhigh = 11.2 kA·m-1) was switched on and off. For investigation of the micro- and nanostructural changes related to the actuation of the developed nanocomposite, AFM and WAXS experiments were conducted with programmed nanocomposite samples under cyclic heating and cooling between 25 °C and 60 °C. In AFM experiments the change in the distance (D) between representative droplet-like structures related to the OPDL geometry determining domains was used to calculate the reversible change in D. Here Drev = 3.5±1% was found for NC-mNP-OCL which was in good agreement with the results of the magneto-mechanical actuation experiments. Finally, the analysis of azimuthal (radial) WAXS scattering profiles could support the oriented crystallization of the OCL actuation domains at 25 °C. In conclusion, the results of this work successfully demonstrated that shape-memory polymer nanocomposites, containing mNPs as magneto-sensitive multifunctional netpoints in a covalently crosslinked multiphase polymer matrix, exhibit magnetically (remotely) controlled actuations upon repetitive exposure to an alternating magnetic field. Furthermore, the (shape) memory of such a nanocomposite can be erased by exposing it to temperatures above the melting temperature of the geometry forming domains, which allows a reprogramming of the actuator. These findings would be relevant for designing novel reprogrammable remotely controllable soft polymeric actuators. N2 - Polymere Materialien, die nach ihrer Programmierung reversible Formänderungen infolge einer thermischen oder elektrischen Stimulation ausführen, können als Aktuatoren in künstlichen Muskeln, sowie Bauteilen in den Bereichen Photonik, Robotik oder Sensorik dienen. Derartige Aktuatormaterialien können mit Hydrogelen, flüssigkristallinen Elastomeren, elektroaktiven Polymeren oder Formgedächtnispolymeren realisiert werden. Wenn die Anwendungsbedingungen eine direkte Erwärmung oder elektrische Stimulation dieser intelligenten Bauteile nicht zulassen, ist eine kontaktlose Aktivierung erforderlich. Eine ferngesteuerte Aktivierung der Aktuatoren wurde für Komposite aus flüssigkristallinen Elastomeren oder Formgedächtnispolymernetzwerken beschrieben, wenn eine anhaltende externe Spannung während der induktiven Erwärmung in einem magnetischen Wechselfeld angewendet wird. Solche Verbundwerkstoffe können jedoch nicht den Anforderungen von Anwendungen entsprechen, die ferngesteuerte freistehende Bewegungen der Aktuatorkomponenten erfordern. Die vorliegende Arbeit untersucht, ob fernsteuerbare Aktuatoren, deren Geometrie umprogrammierbar ist, über magneto-sensitive Multiphasen-Formgedächtnis-Copolymernetzwerk-Komposite, die Eisenoxid-Nanopartikel als magneto-sensitive, multivalente Netzpunkte enthalten, hergestellt werden können. Eine zentrale Hypothese besteht darin, dass ein magnetisch ferngesteuerter (reversibler bidirektionaler) Formgedächtniseffekt bei derartigen Nanokompositen ohne das Anlegen einer äußeren Spannung/Kraft (freistehend) erreicht werden kann, wenn die erforderliche Orientierung der kristallisierbaren Aktuatordomänen (AD) durch eine innere skelettartige Struktur, die durch eine zweite kristallisierbare Phase ausgebildet wird und die Geometrie der Probe bestimmt, sichergestellt werden kann, während die kovalent integrierten, magneto-sensitiven Eisenoxid-Nanopartikel, die kovalent in die ADs integriert sind, als Sensoren für das kontaktlose Aufheizen im Magnetfeld fungieren. Die Polymermatrix dieser Komposite sollte eine phasen-segregierte Morphologie aufweisen, die überwiegend aus kyrstallierbaren AD besteht, wobei zusätzliche andere, höher schmelzende Kristallite nach der Programmierung der Komposite eine skelettartige, geometriebestimmende Gerüststruktur ausbilden (Geometrie bestimmende Domänen, GD), die auf diese Weise die Orientierung der AD während der Aktuation sicherstellen. Das Arbeitsprinzip für die reversiblen bidirektionalen Bewegungen im Multiphasen-Formgedächtnis-PolymerNetzwerk Komposit beruht auf einer schmelzinduzierte Kontraktion (MIC) der orientierten ADs während der induktiven Erwärmung und deren kristallisationsinduzierten Ausdehnung (CIE) während des Abkühlens. Schließlich sollte die Menge an mehrwertigen magneto-empfindlichen Netzpunkten in solch einem Material so gering wie möglich sein, um eine ausreichende Gesamtelastizität des Nanokomposits zu gewährleisten und gleichzeitig ein vollständiges Schmelzen von ADs und GDs durch induktive Erwärmung ermöglichen, die erforderlich ist für die Reprogrammierung des Aktuators.Zunächst wurden oberflächenmodifizierte Eisenoxid-Nanopartikel synthetisiert und untersucht. Das Co-Präzipitationsverfahren wurde angewandt, um mNP auf der Basis von Magnetit mit einer Größe von 12±3 nm zu synthetisieren. In einem nächsten Schritt wurde eine Ringöffnungspolymerisation (ROP) zur kovalenten Oberflächenmodifizierung solcher mNP mit oligo(ε-Caprolacton) (OCL) oder oligo(ω-Pentadecalacton) (OPDL) über den "grafted from" Ansatz durchgeführt. Eine erfolgreiche Beschichtung von mNP mit OCL und OPDL konnte anhand von zwei Schmelzpeaks bei 52±1 °C (mNP-OCL) und 89±1 °C für mNP-OPDL in DSCExperimenten bestätigt werden. Es wurde weiter untersucht, ob mit einer zweiten oberflächeninitiierten ROP aus mNP-OCL oder mNP-OPDL durch Umsetzung mit ω-Pentadecalacton oder ε-Caprolacton zweischichtig oberflächenmodifizierte mNPs hergestellt werden können. Die Beobachtung von zwei unterschiedlichen Schmelzübergängen in DSCAufheizkurven sowie die mittels Gelpermeationschromatographie und 1H-NMR bestimmte Molekulargewichtszunahme der abgelösten oligomeren Beschichtungen bestätigten eine erfolgreiche Synthese der zweischichtig modifizierten Nanopartikel (mNP-OCL-OPDL und mNPOPDL-OCL). Im Gegensatz dazu zeigten TEM-Aufnahmen eine Reduktion der Dicke der Polymerbeschichtung auf den Nanopartikeln nach der zweiten ROP. Dies deutet darauf hin, dass die angewandte Synthese und Aufreinigung eine weitere Optimierung bedarf. Zur Untersuchung des Einflusses der Verteilung der mNP in einer Polymermatrix auf das magnetische Aufheizverhalten der Komposite wurden sowohl mNP als auch OCL-beschichtete Magnetit-Nanopartikel (mNP-OCL) physikalisch in vernetzte Poly(ε-caprolacton) Netzwerke eingearbeitet. In einem magnetischen Wechselfeld (AMF) mit einer magnetischen Feldstärke von H = 30 kA·m-1 wurden induktive Aufheizexperimente mit beiden Kompositmaterialien cPCL/mNP und cPCL/mNP-OCL durchgeführt. Dabei wurde für cPCL/mNP-OCL eine Massetemperatur von Tbulk = 74±2 °C erreicht, die um fast 20 °C höher lag als der ix Schmelzübergang der PCL-basierten Polymermatrix. Im Gegensatz dazu konnte für das Komposit mit einfachen mNP nur eine Tbulk von 48±2 °C erreicht werden, was für ein vollständiges Schmelzen aller PCL-Kristallite nicht ausreichend ist, wie es für eine kontaklose Schaltung des Formgedächtniseffektes erforderlich wäre. Als nächstes wurden multiphasige Nanokompositnetzwerke hergestellt, die oberflächenmodifizierte mNP als kovalente Netzpunkte enthalten. Diese Komposite wurden aus sternförmigen OCL und OPDL Precursoren, mNP-OCL durch Reaktion mit HDI synthetisiert. Das Gewichtsverhältnis von OPDL und OCL in der Reaktionsmischung betrug 15/85, und die Menge an Eisenoxid in den Nanokompositen entsprach 4 wt%. DSC-Experimente zeigten je zwei gut getrennte Schmelz- und Kristallisationspeaks, die die erforderliche phasen-segregierte Morphologie in den Nanokompositen NC-mNP-OCL bestätigten. TEM-Aufnahmen zeigten ebenfalls eine phasen-separierte Morphologie der Polymermatrix auf der Mikroebene mit tröpfchenförmigen Bereichen, die den in der OCL-Matrix dispergierten OPDL-Domänen zugeordnet werden können. Die Untersuchungen zum induktiven Aufheizverhalten der Nanokomposite bei einer Magnetfeldstärke von Hhigh = 11.2 kA·m-1 ergaben eine Oberflächen-Plateautemperatur von Tsurf = 57±1 °C. Eine effektive Wärmeerzeugungskonstante ̅P kann aus einem kinetischen Monte Carlo-Modellansatz abgeleitet werden, diese ist proportional zur Rate der Wärmeerzeugung pro Volumeneinheit der Probe. Für das untersuchte Nanokomposit betrug ̅P = 1.04±0.01 K·s-1 bei Hhigh, wohingegen bei einer Magnetfeldstärke von Hreset = 30.0 kA·m-1 eine Oberflächentemperatur von Tsurf = 88±1 °C erreicht wurde, bei der alle OPDL Kristallite aufgeschmolzen sind und der ̅P-Wert 1.93±0.02 K·s-1 betrug, welches ein gutes magnetische Aufheizverhalten charakterisiert. Der freistehende magnetisch gesteuerte reversible Formgedächtniseffekt (mrSME) wurde mit Nanokompositstreifen untersucht, der durch Biegen auf einen Winkel von 180° programmiert wurden. Durch Anwendung eines Magnetfeldes von Hhigh = 11.2 kA·m-1 wurden die Komposite auf ca. 60 °C aufgeheizt (erforderlich für das vollständige Aufschmelzen von OCL-Kristallen), und durch Ausschalten des Magnetfeldes (H0 = 0 kA·m-1) auf Umgebungstemperatur abgekühlt. Ein ausgeprägter mrSME konnte für eine durch Biegen programmierten Probe beobachtetet werden, mit Änderungen im Biegewinkel von Δϐrev = 20±3°. In einem mehrzyklischen magnetischen Biegeversuch mit 600 Heiz/Kühlzyklen konnte gezeigt werden, dass sich die Aktuations-Performance mit zunehmender Anzahl an Prüfzyklen nicht verändert, was die Zuverlässigkeit dieses Soft-Aktuators dokumentiert. Der Grad der Auslenkung (Winkeländerung) während der Aktuation sowie die Kinetik der Formänderung während des Erhitzens können durch Variation der magnetischen Feldstärke zwischen Hlow = 10.0 kA·m-1 und Hhigh sowie Einwirkzeit des Magnetfelds eingestellt werden. Nach Anwendung von Hreset = 30.0 kA·m-1 wird die programmierte Geometrie gelöscht und die nimmt wieder ihre ursprünglich gerade Form ein. Die Reprogrammierbarkeit der Nanokomposit-Aktuatoren wurde am Beispiel ein und desselben Probekörpers demonstriert, der nach Programmierung durch Biegen zunächst eine reversible Winkeländerungen bei Aktivierung vollführt, anschließend zu einer Ziehharmonika umprogrammiert wurde, die sich bei induktiver Erwärmung zusammenzieht und bei Kühlung auf Raumtemperatur ausdehnt und abschließend zu einer clipartigen Form umprogrammiert wurde, welche sich bei induktiver Erwärmung im Magnetfeld schließt und beim Kühlen wieder öffnet. In einem nächsten Schritt wurde die grundsätzliche Anwendbarkeit der vorgestellten fernsteuerbaren Formgedächtnispolymer-Aktuatoren am Beispiel des wiederholten Öffnens und Schließens einer aus NC-mNP-OCL hergestellten Multiringvorrichtung demonstriert. Dieser Demonstrator öffnet und schließt sich, wenn ein Magnetfeld von (Hhigh = 11.2 kA·m-1) wiederholend ein- und ausgeschaltet wird. Zur Untersuchung der mikro- und nanostruturellen Veränderungen im Zusammenhang mit der Aktuation der entwickelten Nanokomposite wurden AFM- und WAXS-Experimente an programmierten Nanokompositproben unter zyklischen Erwärmen und Kühlen von 25 °C auf 60 °C durchgeführt. In AFM-Experimenten wurde die Änderung des Abstands (D) zwischen repräsentativen tröpfchenartigen OPDL-Strukturen (GD) verwendet, um die reversible Änderung in D zu berechnen. Hierbei wurde Drev = 3.5±1% für NC-mNP-OCL gefunden, die mit den Ergebnissen der magneto-mechanischen Experimente gut übereinstimmen. Schließlich konnte die Analyse der azimutalen (radialen) WAXS-Streuprofile die orientierte Kristallisation der OCLAktuatordomänen bei abkühlen von 60 °C auf 25 °C zeigen. Zusammenfassend zeigen die Ergebnisse dieser Arbeit, dass Formgedächtnispolymer-Nanokomposite, die mNP als magneto-sensitive multifunktionelle Netzpunkte in einer kovalent vernetzten Multiphasen-Polymermatrix enthalten, eine ferngesteuerte, freistehende Aktuation bei wiederholter Exposition in einem magnetischen Wechselfeld aufweisen. Ferner kann der Formspeicher der Nanokomposite gelöscht werden, indem diese Temperaturen oberhalb der Schmelztemperatur der geometriebestimmenden Domänen (OPDL) ausgesetzt werden, was eine Neuprogrammierung der Aktuatoren in beliebige andere Formen ermöglicht. Die Ergebnisse dieser Arbeit könnten für die Konstruktion neuartiger, umprogrammierbarer und fernsteuerbarer Polymer-Aktuatoren relevant sein. KW - materials science KW - actuator KW - magnetic nanoparticles KW - shape-memory polymer KW - nanocomposite KW - Aktuator KW - magnetische Nanopartikel KW - Formgedächtnispolymer KW - Nanokomposite Y1 - 2018 ER - TY - JOUR A1 - Wang, Li A1 - Razzaq, Muhammad Yasar A1 - Rudolph, Tobias A1 - Heuchel, Matthias A1 - Nöchel, Ulrich A1 - Mansfeld, Ulrich A1 - Jiang, Yi A1 - Gould, Oliver E. C. A1 - Behl, Marc A1 - Kratz, Karl A1 - Lendlein, Andreas T1 - Reprogrammable, magnetically controlled polymeric nanocomposite actuators JF - Material horizons N2 - Soft robots and devices with the advanced capability to perform adaptive motions similar to that of human beings often have stimuli-sensitive polymeric materials as the key actuating component. The external signals triggering the smart polymers’ actuations can be transmitted either via a direct physical connection between actuator and controlling unit (tethered) or remotely without a connecting wire. However, the vast majority of such polymeric actuator materials are limited to one specific type of motion as their geometrical information is chemically fixed. Here, we present magnetically driven nanocomposite actuators, which can be reversibly reprogrammed to different actuation geometries by a solely physical procedure. Our approach is based on nanocomposite materials comprising spatially segregated crystallizable actuation and geometry determining units. Upon exposure to a specific magnetic field strength the actuators’ geometric memory is erased by the melting of the geometry determining units allowing the implementation of a new actuator shape. The actuation performance of the nanocomposites can be tuned and the technical significance was demonstrated in a multi-cyclic experiment with several hundreds of repetitive free-standing shape shifts without losing performance. Y1 - 2018 U6 - https://doi.org/10.1039/c8mh00266e SN - 2051-6347 SN - 2051-6355 VL - 5 IS - 5 SP - 861 EP - 867 PB - Royal Society of Chemistry CY - Cambridge ER - TY - THES A1 - Werner, Peter T1 - Untersuchung stark-streuender Polymersuspensionen mittels optischer Methoden Y1 - 2018 ER - TY - JOUR A1 - Wessig, Pablo A1 - John, Leonard A1 - Mertens, Monique T1 - Extending the Class of [1,3]-Dioxolo[4.5-f]benzodioxole (DBD) Fluorescent Dyes JF - European journal of organic chemistry N2 - Synthetic routes to a collection of new fluorescent dyes are described, which are based on the [1,3]-dioxolo[4.5-f]benzodioxole (DBD) core. By introducing different electron withdrawing groups in 4- and 8-position of the DBD moiety the emission wavelength could be adjusted over a large spectral range from blue to orange light. KW - Functional organic materials KW - Fluorescence KW - DBD dyes KW - Large Stokes shifts KW - Aryllithium compounds KW - Heterocycles Y1 - 2018 U6 - https://doi.org/10.1002/ejoc.201800002 SN - 1434-193X SN - 1099-0690 VL - 2018 IS - 14 SP - 1674 EP - 1681 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Wolff, Christian Michael A1 - Frischmann, Peter D. A1 - Schulze, Marcus A1 - Bohn, Bernhard J. A1 - Wein, Robin A1 - Livadas, Panajotis A1 - Carlson, Michael T. A1 - Jäckel, Frank A1 - Feldmann, Jochen A1 - Würthner, Frank A1 - Stolarczyk, Jacek K. T1 - All-in-one visible-light-driven water splitting by combining nanoparticulate and molecular co-catalysts on CdS nanorods JF - Nature Energy N2 - Full water splitting into hydrogen and oxygen on semiconductor nanocrystals is a challenging task; overpotentials must be overcome for both half-reactions and different catalytic sites are needed to facilitate them. Additionally, efficient charge separation and prevention of back reactions are necessary. Here, we report simultaneous H-2 and O-2 evolution by CdS nanorods decorated with nanoparticulate reduction and molecular oxidation co-catalysts. The process proceeds entirely without sacrificial agents and relies on the nanorod morphology of CdS to spatially separate the reduction and oxidation sites. Hydrogen is generated on Pt nanoparticles grown at the nanorod tips, while Ru(tpy)(bpy)Cl-2-based oxidation catalysts are anchored through dithiocarbamate bonds onto the sides of the nanorod. O-2 generation from water was verified by O-18 isotope labelling experiments, and time-resolved spectroscopic results confirmed efficient charge separation and ultrafast electron and hole transfer to the reaction sites. The system demonstrates that combining nanoparticulate and molecular catalysts on anisotropic nanocrystals provides an effective pathway for visible-light-driven photocatalytic water splitting. Y1 - 2018 U6 - https://doi.org/10.1038/s41560-018-0229-6 SN - 2058-7546 VL - 3 IS - 10 SP - 862 EP - 869 PB - Nature Publ. Group CY - London ER - TY - THES A1 - Xiong, Tao T1 - Vibrationally resolved absorption, emission, resonance Raman and photoelectron spectra of selected organic molecules, associated radicals and cations T1 - Schwingungsaufgelöste Absorptions-, Emissions-, Resonanz-Raman- und Photoelektronenspektren ausgewählter organischer Moleküle, assoziierter Radikale und Kationen BT - a time-dependent approach BT - ein zeitabhängiger Ansatz N2 - Time-dependent correlation function based methods to study optical spectroscopy involving electronic transitions can be traced back to the work of Heller and coworkers. This intuitive methodology can be expected to be computationally efficient and is applied in the current work to study the vibronic absorption, emission, and resonance Raman spectra of selected organic molecules. Besides, the "non-standard" application of this approach to photoionization processes is also explored. The application section consists of four chapters as described below. In Chapter 4, the molar absorptivities and vibronic absorption/emission spectra of perylene and several of its N-substituted derivatives are investigated. By systematically varying the number and position of N atoms, it is shown that the presence of nitrogen heteroatoms has a negligible effect on the molecular structure and geometric distortions upon electronic transitions, while spectral properties are more sensitive: In particular the number of N atoms is important while their position is less decisive. Thus, N-substitution can be used to fine-tune the optical properties of perylene-based molecules. In Chapter 5, the same methods are applied to study the vibronic absorption/emission and resonance Raman spectra of a newly synthesized donor-acceptor type molecule. The simulated absorption/emission spectra agree fairly well with experimental data, with discrepancies being attributed to solvent effects. Possible modes which may dominate the fine-structure in the vibronic spectra are proposed by analyzing the correlation function with the aid of Raman and resonance Raman spectra. In the next two chapters, besides the above types of spectra, the methods are extended to study photoelectron spectra of several small diamondoid-related systems (molecules, radicals, and cations). Comparison of the photoelectron spectra with available experimental data suggests that the correlation function based approach can describe ionization processes reasonably well. Some of these systems, cationic species in particular, exhibit somewhat peculiar optical behavior, which presents them as possible candidates for functional devices. Correlation function based methods in a more general sense can be very versatile. In fact, besides the above radiative processes, formulas for non-radiative processes such as internal conversion have been derived in literature. Further implementation of the available methods is among our next goals. N2 - Molekülsysteme bestehen aus Kernen und Elektronen, deren viel kleinere Masse sie in die Lage versetzten, sich der Bewegung des ersteren augenblicklich anzupassen. Daher ist die Bewegung der Elektronen und Kerne in einer guten ersten Annäherung "unabhängig", und die Energie der Elektronen kann zuerst berechnet werden, vorausgesetzt, die Kerne sind stationär. Die so gewonnene elektronische Energie wird zur Abstoßungsenergie zwischen den Kernen addiert, um ein Potential zu erhalten, das die Bewegung der Kerne bestimmt. Quantenmechanisch können sowohl die Elektronen als auch die Kerne nur bestimmte Energieniveaus haben. Die molekulare vibronische (= Schwingung + Elektronik) Absorptionsspektroskopie beinhaltet den Übergang der Elektronen und Kerne von ihrem Anfangs- in ihren Endzustand durch Photonenabsorption. Die größere elektronische Übergangsenergie bestimmt die Position des Absorptionsmaximums, während die kleinere nukleare Schwingungsübergangsenergie (ohne Berücksichtigung von Translation und Rotation) die Position der Teilmaxima innerhalb des Absorptionsbereichs bestimmt, wodurch die vibronische Feinstruktur entsteht. Ähnliche Ideen gelten auch für die vibronische Emissionsspektroskopie. Die Resonanz-Raman-Spektroskopie untersucht die Energieänderung des einfallenden Photons (dessen Energie ausreichend ist, um die Elektronen in einen höheren elektronischen Zustand anzuregen), nachdem es mit dem Molekül wechselwirkt. Der Energiegewinn oder -verlust des einfallenden Photons bewirkt eine Änderung des Schwingungszustandes. Die Photoelektronenspektroskopie ist ähnlich wie die vibronische Absorption, benötigt aber in der Regel mehr Energie des einfallenden Photons, da neben der Anregung des Moleküls in einen höheren vibronischen Zustand zusätzliche Energie benötigt wird, um ein Elektron aus dem Molekül zu entfernen. Diese spektroskopischen Techniken liefern wertvolle Informationen über die elektronische und nukleare Bewegung des Moleküls. Theoretisch können wir eine zeitabhängige Korrelationsfunktion verwenden, um die Spektren zu simulieren. Die Korrelationsfunktion für die Absorption ist beispielsweise eine Funktion der Zeit, deren Entwicklung Informationen über die elektronischen Energien und die nukleare Bewegung enthält. Um das Absorptionsspektrum in Form von Energie zu erhalten, wird ein mathematisches Verfahren, die so genannte Fourier-Transformation, auf die zeitabhängige Korrelationsfunktion angewendet, um ein energieabhängiges Spektrum zu erhalten. Diese Methode wird auf ausgewählte organische Moleküle, darunter einige Radikale und Kationen, angewandt, um deren elektronisches und optisches Verhalten unter dem Einfluss von einfallendem Licht zu untersuchen und Einblicke in das Design neuer optoelektronischer Bauelemente zu gewinnen. Bei einigen Molekülen/Systemen wird die vibronische Feinstruktur durch Faktoren wie molekulare Zusammensetzung und Umgebung wie Lösungsmittel beeinflusst, was darauf hindeutet, dass diese Systeme zur Feinabstimmung der gewünschten Eigenschaften verwendet werden können. Für andere Systeme gibt es fast keine sichtbare vibronische Feinstruktur, was bedeutet, dass sich die nukleare Bewegung solcher Systeme im Allgemeinen von derjenigen der vorherigen Kategorie unterscheidet. KW - vibrationally resolved electronic spectroscopy KW - photoelectron spectroscopy KW - resonance Raman spectroscopy KW - correlation function KW - ionization potential KW - time-dependent density functional theory KW - perylene KW - diamondoid KW - Schwingungsaufgelöste UV/VIS-Spektroskopie KW - Photoelektronenspektroskopie KW - Resonanz-Raman-Spektroskopie KW - Korrelationsfunktion KW - Ionisationspotential KW - Zeitabhängige Dichtefunktionaltheorie KW - Perylen KW - Diamondoide Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-418105 ER - TY - JOUR A1 - Xiong, Tao A1 - Wlodarczyk, Radoslaw A1 - Saalfrank, Peter T1 - Vibrationally resolved absorption and fluorescence spectra of perylene and N-substituted derivatives from autocorrelation function approaches JF - Chemical physics : a journal devoted to experimental and theoretical research involving problems of both a chemical and physical nature N2 - Vibrationally resolved absorption and emission (fluorescence) spectra of perylene and its N-derivatives in gas phase and in solution (acetonitrile) were simulated using a time-dependent approach based on correlation functions determined by density functional theory. By systematically varying the number and position of N atoms, it is shown that the presence of nitrogen heteroatoms has a negligible effect on the molecular structure and geometric distortions upon electronic transitions, while spectral properties change: in particular the number of N atoms is important while their position is less decisive. Thus, the N-substitution can be used to fine-tune the optical properties of perylene-based molecules. KW - Perylene KW - Vibronic spectrum KW - Correlation function KW - Dimer KW - Excimer KW - PCM Y1 - 2018 U6 - https://doi.org/10.1016/j.chemphys.2018.06.011 SN - 0301-0104 SN - 1873-4421 VL - 515 SP - 728 EP - 736 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Xiong, Tao A1 - Włodarczyk, Radosław Stanisław A1 - Gallandi, Lukas A1 - Körzdörfer, Thomas A1 - Saalfrank, Peter T1 - Vibrationally resolved photoelectron spectra of lower diamondoids BT - a time-dependent approach JF - The journal of chemical physics : bridges a gap between journals of physics and journals of chemistry N2 - Vibrationally resolved lowest-energy bands of the photoelectron spectra (PES) of adamantane, diamantane, and urotropine were simulated by a time-dependent correlation function approach within the harmonic approximation. Geometries and normal modes for neutral and cationic molecules were obtained from B3LYP hybrid density functional theory (DFT). It is shown that the simulated spectra reproduce the experimentally observed vibrational finestructure (or its absence) quite well. Origins of the finestructure are discussed and related to recurrences of autocorrelation functions and dominant vibrations. Remaining quantitative and qualitative errors of the DFT-derived PES spectra refer to (i) an overall redshift by ∼0.5 eV and (ii) the absence of satellites in the high-energy region of the spectra. The former error is shown to be due to the neglect of many-body corrections to ordinary Kohn-Sham methods, while the latter has been argued to be due to electron-nuclear couplings beyond the Born-Oppenheimer approximation [Gali et al., Nat. Commun. 7, 11327 (2016)]. Y1 - 2018 U6 - https://doi.org/10.1063/1.5012131 SN - 0021-9606 SN - 1089-7690 VL - 148 IS - 4 PB - American Institute of Physics CY - Melville ER - TY - JOUR A1 - Xu, Xiao A1 - Angioletti-Uberti, Stefano A1 - Lu, Yan A1 - Dzubiella, Joachim A1 - Ballauff, Matthias T1 - Interaction of Proteins with Polyelectrolytes BT - Comparison of Theory to Experiment JF - Langmuir N2 - We discuss recent investigations of the interaction of polyelectrolytes with proteins. In particular, we review our recent studies on the interaction of simple proteins such as human serum albumin (HSA) and lysozyme with linear polyelectrolytes, charged dendrimers, charged networks, and polyelectrolyte brushes. In all cases discussed here, we combined experimental work with molecular dynamics (MD) simulations and mean-field theories. In particular, isothermal titration calorimetry (ITC) has been employed to obtain the respective binding constants K-b and the Gibbs free energy of binding. MD simulations with explicit counterions but implicit water demonstrate that counterion release is the main driving force for the binding of proteins to strongly charged polyelectrolytes: patches of positive charges located on the surface of the protein become multivalent counterions of the polyelectrolyte, thereby releasing a number of counterions condensed on the polyelectrolyte. The binding Gibbs free energy due to counterion release is predicted to scale with the logarithm of the salt concentration in the system, which is verified by both simulations and experiment. In several cases, namely, for the interaction of proteins with linear polyelectrolytes and highly charged hydrophilic dendrimers, the binding constant could be calculated from simulations to very good approximation. This finding demonstrated that in these cases explicit hydration effects do not contribute to the Gibbs free energy of binding. The Gibbs free energy can also be used to predict the kinetics of protein uptake by microgels for a given system by applying dynamic density functional theory. The entire discussion demonstrates that the direct comparison of theory with experiments can lead to a full understanding of the interaction of proteins with charged polymers. Possible implications for applications, such as drug design, are discussed. Y1 - 2018 U6 - https://doi.org/10.1021/acs.langmuir.8b01802 SN - 0743-7463 VL - 35 IS - 16 SP - 5373 EP - 5391 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Yalcinkaya, Hacer A1 - Bressel, Katharina A1 - Lindner, Peter A1 - Gradzielski, Michael T1 - Controlled formation of vesicles with added styrene and their fixation by polymerization JF - Journal of colloid and interface science N2 - Hypothesis: An effective way for fixating vesicle structures is the insertion of monomers and cross-linking agents into their bilayer, and their subsequent polymerization can lead to the formation of polymeric nanocapsules. Particularly attractive here are vesicle systems that form spontaneously well-defined small vesicles, as obtaining such small nanocapsules with sizes below 100 nm is still challenging. Experiments: A spontaneously forming well-defined vesicle system composed of the surfactants TDMAO (tetradecyldimethylamine oxide), Pluronic L35, and LiPFOS (lithium perfluorooctylsulfonate) mixture was used as template for fixation by polymerization. Therefore, styrene monomer was incorporated into the vesicle bilayer and ultimately these structures were fixated by UV induced radical polymerization. Structural alteration of the vesicles upon loading with monomer and the cross-linker as well as the effect of subsequent polymerization in the membrane were investigated in detail by turbidity measurements, dynamic and static light scattering, (DLS, SLS), and small angle neutron scattering (SANS). Findings: The analysis showed the changes on vesicle structures due to the monomer loading, and that these structures can become permanently fixed by the polymerization process. The potential of this approach to produce well-defined nanocapsules starting from a self-assembled system and following polymerization is critically evaluated. (C) 2018 Elsevier Inc. All rights reserved. KW - Template reaction KW - Zwitterionic surfactant KW - Anionic surfactant KW - Styrene KW - Vesicle KW - Small angle neutron scattering KW - Polymerization Y1 - 2018 U6 - https://doi.org/10.1016/j.jcis.2018.07.097 SN - 0021-9797 SN - 1095-7103 VL - 531 SP - 672 EP - 680 PB - Elsevier CY - San Diego ER - TY - JOUR A1 - Yan, Wan A1 - Rudolph, Tobias A1 - Nöchel, Ulrich A1 - Gould, Oliver E. C. A1 - Behl, Marc A1 - Kratz, Karl A1 - Lendlein, Andreas T1 - Reversible actuation of thermoplastic multiblock copolymers with overlapping thermal transitions of crystalline and glassy domains JF - Macromolecules : a publication of the American Chemical Society N2 - Polymeric materials possessing specific features like programmability, high deformability, and easy processability are highly desirable for creating modern actuating systems. In this study, thermoplastic shape-memory polymer actuators obtained by combining crystallizable poly(epsilon-caprolactone) (PCL) and poly(3S-isobutylmorpholin-2,5-dione) (PIBMD) segments in multiblock copolymers are described. We designed these materials according to our hypothesis that the confinement of glassy PIBMD domains present at the upper actuation temperature contribute to the stability of the actuator skeleton, especially at large programming strains. The copolymers have a phase-segregated morphology, indicated by the well-separated melting and glass transition temperatures for PIBMD and PCL, but possess a partially overlapping T-m of PCL and T-g of PIBMD in the temperature interval from 40 to 60 degrees C. Crystalline PIBMD hard domains act as strong physical netpoints in the PIBMD-PCL bulk material enabling high deformability (up to 2000%) and good elastic recoverability (up to 80% at 50 degrees C above T-m,T-PCL). In the programmed thermoplastic actuators a high content of crystallizable PCL actuation domains ensures pronounced thermoreversible shape changes upon repetitive cooling and heating. The programmed actuator skeleton, composed of PCL crystals present at the upper actuation temperature T-high and the remaining glassy PIBMD domains, enabled oriented crystallization upon cooling. The actuation performance of PIBMD-PCL could be tailored by balancing the interplay between actuation and skeleton, but also by varying the quantity of crystalline PIBMD hard domains via the copolymer composition, the applied programming strain, and the choice of T-high. The actuator with 17 mol% PIBMD showed the highest reversible elongation of 11.4% when programmed to a strain of 900% at 50 degrees C. It is anticipated that the presented thermoplastic actuator materials can be applied as modern compression textiles. Y1 - 2018 U6 - https://doi.org/10.1021/acs.macromol.8b00322 SN - 0024-9297 SN - 1520-5835 VL - 51 IS - 12 SP - 4624 EP - 4632 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Yang, Guang A1 - Hu, Rongting A1 - Ding, Hong-ming A1 - Kochovski, Zdravko A1 - Mei, Shilin A1 - Lu, Yan A1 - Ma, Yu-qiang A1 - Chen, Guosong A1 - Jiang, Ming T1 - CO2-switchable response of protein microtubules BT - behaviour and mechanism JF - Materials chemistry frontiers N2 - Recently, we proposed a small molecular inducing ligand strategy to assemble proteins into highly-ordered structures via dual non-covalent interactions, i.e. carbohydrate-protein interaction and dimerization of Rhodamine B. Using this approach, artificial protein microtubules were successfully constructed. In this study, we find that these microtubules exhibit a perfect CO2 responsiveness; assembly and disassembly of these microtubules were nicely controlled by the alternative passage of CO2 and N-2. Upon the injection of CO2, a negative net-charged SBA turns into a neutral or positive net-charged SBA, which elongated, to some extent, the effective distance between SBA and Rhodamine B, resulting in the disassociation of the Rhodamine B dimer. Further experimental and simulation results reveal that the CO2-responsive mechanism differs from that of solubility change of the previously reported CO2-responsive synthetic materials. Y1 - 2018 U6 - https://doi.org/10.1039/c8qm00245b SN - 2052-1537 VL - 2 IS - 9 SP - 1642 EP - 1646 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Yaouba, Souaibou A1 - Koch, Andreas A1 - Guantai, Eric M. A1 - Derese, Solomon A1 - Irungu, Beatrice A1 - Heydenreich, Matthias A1 - Yenesew, Abiy T1 - Alkenyl cyclohexanone derivatives from Lannea rivae and Lannea schweinfurthii JF - Phytochemistry letters / Phytochemical Society of Europe N2 - Phytochemical investigation of the CH2Cl2/MeOH (1:1) extract of the roots of Lannea rivae (Chiov) Sacleux (Anacardiaceae) led to the isolation of a new alkenyl cyclohexenone derivative: (4R,6S)-4,6-dihydroxy-6-((Z)-nonadec-14′-en-1-yl)cyclohex-2-en-1-one (1), and a new alkenyl cyclohexanol derivative: (2S*,4R*,5S*)-2,4,5-trihydroxy-2-((Z)-nonadec-14′-en-1-yl)cyclohexanone (2) along with four known compounds, namely epicatechin gallate, taraxerol, taraxerone and β-sitosterol; while the stem bark afforded two known compounds, daucosterol and lupeol. Similar investigation of the roots of Lannea schweinfurthii (Engl.) Engl. led to the isolation of four known compounds: 3-((E)-nonadec-16′-enyl)phenol, 1-((E)-heptadec-14′-enyl)cyclohex-4-ene-1,3-diol, catechin, and 1-((E)-pentadec-12′-enyl)cyclohex-4-ene-1,3-diol. The structures of the isolated compounds were determined by NMR spectroscopy and mass spectrometry. The absolute configuration of compound 1 was established by quantum chemical ECD calculations. In an antibacterial activity assay using the microbroth kinetic method, compound 1 showed moderate activity against Escherichia coli while compound 2 exhibited moderate activity against Staphylococcus aureus. Compound 1 also showed moderate activity against E. coli using the disc diffusion method. The roots extract of L. rivae was notably cytotoxic against both the DU-145 prostate cancer cell line and the Vero mammalian cell line (CC50 = 5.24 and 5.20 μg/mL, respectively). Compound 1 was also strongly cytotoxic against the DU-145 cell line (CC50 = 0.55 μg/mL) but showed no observable cytotoxicity (CC50 > 100 μg/mL) against the Vero cell line. The roots extract of L. rivae and L. schweinfurthii, epicatechin gallate as well as compound 1 exhibited inhibition of carageenan-induced inflammation. KW - Lannea rivae KW - Lannea schweinfurthii KW - Alkenyl cyclohexenone KW - Alkenyl cyclohexanone KW - Anti-inflammatory KW - Cytotoxicity KW - Antimicrobial Y1 - 2017 U6 - https://doi.org/10.1016/j.phytol.2017.12.001 SN - 1874-3900 SN - 1876-7486 VL - 23 SP - 141 EP - 148 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Yarman, Aysu A1 - Kurbanoglu, Sevinc A1 - Jetzschmann, Katharina J. A1 - Ozkan, Sibel A. A1 - Wollenberger, Ulla A1 - Scheller, Frieder W. T1 - Electrochemical MIP-Sensors for Drugs JF - Current Medicinal Chemistry N2 - In order to replace bio-macromolecules by stable synthetic materials in separation techniques and bioanalysis biomimetic receptors and catalysts have been developed: Functional monomers are polymerized together with the target analyte and after template removal cavities are formed in the "molecularly imprinted polymer" (MIP) which resemble the active sites of antibodies and enzymes. Starting almost 80 years ago, around 1,100 papers on MIPs were published in 2016. Electropolymerization allows to deposit MIPs directly on voltammetric electrodes or chips for quartz crystal microbalance (QCM) and surface plasmon resonance (SPR). For the readout of MIPs for drugs amperometry, differential pulse voltammetry (DPV) and impedance spectroscopy (EIS) offer higher sensitivity as compared with QCM or SPR. Application of simple electrochemical devices allows both the reproducible preparation of MIP sensors, but also the sensitive signal generation. Electrochemical MIP-sensors for the whole arsenal of drugs, e.g. the most frequently used analgesics, antibiotics and anticancer drugs have been presented in literature and tested under laboratory conditions. These biomimetic sensors typically have measuring ranges covering the lower nano-up to millimolar concentration range and they are stable under extreme pH and in organic solvents like nonaqueous extracts. KW - Biomimetic sensors KW - molecularly imprinted polymers KW - drug sensors KW - drug imprinting KW - electropolymerization KW - electrochemical sensors Y1 - 2018 U6 - https://doi.org/10.2174/0929867324666171005103712 SN - 0929-8673 SN - 1875-533X VL - 25 IS - 33 SP - 4007 EP - 4019 PB - Bentham Science Publishers LTD CY - Sharjah ER - TY - THES A1 - Zhang, Quanchao T1 - Shape-memory properties of polymeric micro-scale objects prepared by electrospinning and electrospraying N2 - The ongoing trend of miniaturizing multifunctional devices, especially for minimally-invasive medical or sensor applications demands new strategies for designing the required functional polymeric micro-components or micro-devices. Here, polymers, which are capable of active movement, when an external stimulus is applied (e.g. shape-memory polymers), are intensively discussed as promising material candidates for realization of multifunctional micro-components. In this context further research activities are needed to gain a better knowledge about the underlying working principles for functionalization of polymeric micro-scale objects with a shape-memory effect. First reports about electrospun solid microfiber scaffolds, demonstrated a much more pronounced shape-memory effect than their bulk counterparts, indicating the high potential of electrospun micro-objects. Based on these initial findings this thesis was aimed at exploring whether the alteration of the geometry of micro-scale electrospun polymeric objects can serve as suitable parameter to tailor their shape-memory properties. The central hypothesis was that different geometries should result in different degrees of macromolecular chain orientation in the polymeric micro-scale objects, which will influence their mechanical properties as well as thermally-induced shape-memory function. As electrospun micro-scale objects, microfiber scaffolds composed of hollow microfibers with different wall thickness and electrosprayed microparticles as well as their magneto-sensitive nanocomposites all prepared from the same polymer exhibiting pronounced bulk shape-memory properties were investigated. For this work a thermoplastic multiblock copolymer, named PDC, with excellent bulk shape-memory properties, associated with crystallizable oligo(ε-caprolactone) (OCL) switching domains, was chosen for the preparation of electrospun micro-scale objects, while crystallizable oligo(p-dioxanone) (OPDO) segments serve as hard domains in PDC. In the first part of the thesis microfiber scaffolds with different microfiber geometries (solid or hollow with different wall thickness) were discussed. Hollow microfiber based PDC scaffolds were prepared by coaxial electrospinning from a 1, 1, 1, 3, 3, 3 hexafluoro-2-propanol (HFP) solution with a polymer concentration of 13% w·v-1. Here as a first step core-shell fiber scaffolds consisting of microfibers with a PDC shell and sacrificial poly(ethylene glycol) (PEG) core are generated. The hollow PDC microfibers were achieved after dissolving the PEG core with water. The utilization of a fixed electrospinning setup and the same polymer concentration of the PDC spinning solution could ensure the fabrication of microfibers with almost identical outer diameters of 1.4 ± 0.3 µm as determined by scanning electron microscopy (SEM). Different hollow microfiber wall thicknesses of 0.5 ± 0.2 and 0.3 ± 0.2 µm (analyzed by SEM) have been realized by variation of the mass flow rate, while solid microfibers were obtained by coaxial electrospinning without supplying any core solution. Differential scanning calorimetry experiments and tensile tests at ambient temperature revealed an increase in degree of OCL crystallinity form χc,OCL = 34 ± 1% to 43 ± 1% and a decrease in elongation of break from 800 ± 40% to 200 ± 50% associated with an increase in Young´s modulus and failture stress for PDC hollow microfiber scaffolds when compared with soild fibers. The observed effects were enhanced with decreasing wall thickness of the single hollow fibers. The shape-memory properties of the electrospun PDC scaffolds were quantified by cyclic, thermomechanical tensile tests. Here, scaffolds comprising hollow microfibers exhibited lower shape fixity ratios around Rf = 82 ± 1% and higher shape recovery ratios of Rr = 67 ± 1% associated to more pronounced relaxation at constant strain during the first test cycle and a lower switching temperature of Tsw = 33 ± 1 °C than the fibrous meshes consisting of solid microfibers. These findings strongly support the central hypothesis that different fiber geometries (solid or hollow with different wall thickness) in electrospun scaffolds result in different degrees of macromolecular chain orientation in the polymeric micro-scale objects, which can be applied as design parameter for tailoring their mechanical and shape-memory properties. The second part of the thesis deals with electrosprayed particulate PDC micro-scale objects. Almost spherical PDC microparticles with diameters of 3.9 ± 0.9 μm (as determined by SEM) were achieved by electrospraying of HFP solution with a polymer concentration of 2% w·v-1. In contrast, smaller particles with sizes of 400 ± 100 nm or 1.2 ± 0.3 μm were obtained for the magneto-sensitive composite PDC microparticles containing 23 ± 0.5 wt% superparamagnetic magnetite nanoparticles (mNPs). All prepared PDC microparticles exhibited a similar overall crystallinity like the PDC bulk material as analyzed by DSC. AFM nanoindentation results revealed no influence of the nanofiller incorporation on the local mechanical properties represented by the reduced modulus determined for pure PDC microparticles and magneto-sensitive composite PDC microparticles with similar diameters around 1.3 µm. It was found that the reduced modulus of the nanocomposite microparticles increased substantially with decreasing particles size from 2.4 ± 0.9 GPa (1.2 µm) to 11.9 ± 3.1 GPa (0.4 µm), which can be related to a higher orientation of the macromolecules at the surface of smaller sized microparticles. The magneto-sensitivity of such nanocomposite microparticles could be demonstrated in two aspects. One was by attracting/collecting the composite micro-objects with an external permanent magnet. The other one was by a inductive heating to 44 ± 1 °C, which is well above the melting transition of the OCL switching domains, when compacted to a 10 x 10 mm2 film with a thickness of 10 µm and exposed to an alternating magnet field with an magnetic field strength of 30 kA·m-1. Both functions are of great relevance for designing next generation drug delivery systems combining targeting and on demand release. By a compression approach shape-memory functionalization of individual microparticles could be realized. Here different programming pressures and compression temperatures were applied. The shape-recovery capability of the programmed PDC microparticles was quantified by online and off-line heating experiments analyzed via microscopy measurement. The obtained shape-memory properties were found to be strongly depending on the applied programming pressure and temperature. The best shape-memory performance with a high shape recovery rate of about Rr = 80±1% was obtained when a low pressure of 0.2 MPa was applied at 55 °C. Finally, it was demonstrated that PDC microparticles can be utilized as micro building parts for preparation of a macroscopic film with temporary stability by compression of a densely packed array of PDC microparticles at 60 °C followed by subsequent cooling to ambient temperature. This film disintegrates into individual microparticles upon heating to 60 °C. Based on this technology the design of stable macroscopic release systems can be envisioned, which can be easily fixed at the site of treatment (i.e. by suturing) and disintegrate on demand to microparticles facilitating the drug release. In summary, the results of this thesis could confirm the central hypothesis that the variation of the geometry of polymeric micro-objects is a suitable parameter to adjust their shape-memory performance by changing the degree of macromolecular chain orientation in the specimens or by enabling new functions like on demand disintegration. These fundamental findings might be relevant for designing novel miniaturized multifunctional polymer-based devices. KW - shape-memory effect KW - microparticles KW - hollow microfibers KW - geometry Y1 - 2018 ER - TY - JOUR A1 - Zheng, Botuo A1 - Bai, Tianwen A1 - Tao, Xinfeng A1 - Schlaad, Helmut A1 - Ling, Jun T1 - Identifying the Hydrolysis of Carbonyl Sulfide as a Side Reaction Impeding the Polymerization of N-Substituted Glycine N-Thiocarboxyanhydride JF - Biomacromolecules : an interdisciplinary journal focused at the interface of polymer science and the biological sciences N2 - Polypeptoids are noticeable biological materials due to their versatile properties and various applications in drug delivery, surface modification, self-assembly, etc. N-Substituted glycine N-thiocarboxyanhydrides (NNTAs) are more stable monomers than the corresponding N-carboxyanhydrides (NNCAs) and enable one to prepare polypeptoids via ring-opening polymerization even in the presence of water. However, larger amounts of water (>10,000 ppm) cause inhibition of the polymerization. Herein, we discover that during polymerization hydrogen sulfide evolves from the hydrolysis of carbonyl sulfide, which is the byproduct of ring-opening reaction, and reacts with NNTA to produce cyclic oligopeptoids. The capture of N-ethylethanethioic acid as an intermediate product confirms the reaction mechanism together with density functional theory quantum computational results. By bubbling the polymerization solution with argon, the side reaction can be suppressed to allow the synthesis of polysarcosine with high molar mass (M-n = 11,200 g/mol, D = 1.25) even in the presence of similar to 10,000 ppm of water. Y1 - 2018 U6 - https://doi.org/10.1021/acs.biomac.8b01119 SN - 1525-7797 SN - 1526-4602 VL - 19 IS - 11 SP - 4263 EP - 4269 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Zhong, Qi A1 - Mi, Lei A1 - Metwalli, Ezzeldin A1 - Biessmann, Lorenz A1 - Philipp, Martine A1 - Miasnikova, Anna A1 - Laschewsky, Andre A1 - Papadakis, Christine M. A1 - Cubitt, Robert A1 - Schwartzkopf, Matthias A1 - Roth, Stephan V. A1 - Wang, Jiping A1 - Müller-Buschbaum, Peter T1 - Effect of chain architecture on the swelling and thermal response of star-shaped thermo-responsive (poly(methoxy diethylene glycol acrylate)-block-polystyrene)(3) block copolymer films JF - Soft matter N2 - The effect of chain architecture on the swelling and thermal response of thin films obtained from an amphiphilic three-arm star-shaped thermo-responsive block copolymer poly(methoxy diethylene glycol acrylate)-block-polystyrene ((PMDEGA-b-PS)(3)) is investigated by in situ neutron reflectivity (NR) measurements. The PMDEGA and PS blocks are micro-phase separated with randomly distributed PS nanodomains. The (PMDEGA-b-PS)(3) films show a transition temperature (TT) at 33 degrees C in white light interferometry. The swelling capability of the (PMDEGA-b-PS)(3) films in a D2O vapor atmosphere is better than that of films from linear PS-b-PMDEGA-b-PS triblock copolymers, which can be attributed to the hydrophilic end groups and limited size of the PS blocks in (PMDEGA-b-PS)(3). However, the swelling kinetics of the as-prepared (PMDEGA-b-PS)(3) films and the response of the swollen film to a temperature change above the TT are significantly slower than that in the PS-b-PMDEGA-b-PS films, which may be related to the conformation restriction by the star-shape. Unlike in the PS-b-PMDEGA-b-PS films, the amount of residual D2O in the collapsed (PMDEGA-b-PS)(3) films depends on the final temperature. It decreases from (9.7 +/- 0.3)% to (7.0 +/- 0.3)% or (6.0 +/- 0.3)% when the final temperatures are set to 35 degrees C, 45 degrees C and 50 degrees C, respectively. This temperature-dependent reduction of embedded D2O originates from the hindrance of chain conformation from the star-shaped chain architecture. Y1 - 2018 U6 - https://doi.org/10.1039/c8sm00965a SN - 1744-683X SN - 1744-6848 VL - 14 IS - 31 SP - 6582 EP - 6594 PB - Royal Society of Chemistry CY - Cambridge ER - TY - THES A1 - Zimmermann, Diana T1 - Direkte Arylierung BT - eine alternative Synthesemethode zur Herstellung von Absorberpolymeren für die organische Photovoltaik Y1 - 2018 ER - TY - THES A1 - Zimmermann, Marc T1 - Multifunctional patchy silica particles via microcontact printing T1 - Multifunktionale Patchy Silika Partikel mithilfe des Mikrokontaktdruckverfahrens N2 - This research addressed the question, if it is possible to simplify current microcontact printing systems for the production of anisotropic building blocks or patchy particles, by using common chemicals while still maintaining reproducibility, high precision and tunability of the Janus-balance Chapter 2 introduced the microcontact printing materials as well as their defined electrostatic interactions. In particular polydimethylsiloxane stamps, silica particles and high molecular weight polyethylenimine ink were mainly used in this research. All of these components are commercially available in large quantities and affordable, which gives this approach a huge potential for further up-scaling developments. The benefits of polymeric over molecular inks was described including its flexible influence on the printing pressure. With this alteration of the µCP concept, a new method of solvent assisted particle release mechanism enabled the switch from two-dimensional surface modification to three-dimensional structure printing on colloidal silica particles, without changing printing parameters or starting materials. This effect opened the way to use the internal volume of the achieved patches for incorporation of nano additives, introducing additional physical properties into the patches without alteration of the surface chemistry. The success of this system and its achievable range was further investigated in chapter 3 by giving detailed information about patch geometry parameters including diameter, thickness and yield. For this purpose, silica particles in a size range between 1µm and 5µm were printed with different ink concentrations to change the Janus-balance of these single patched particles. A necessary intermediate step, consisting of air-plasma treatment, for the production of trivalent particles using "sandwich" printing was discovered and comparative studies concerning the patch geometry of single and double patched particles were conducted. Additionally, the usage of structured PDMS stamps during printing was described. These results demonstrate the excellent precision of this approach and opens the pathway for even greater accuracy as further parameters can be finely tuned and investigated, e.g. humidity and temperature during stamp loading. The performance of these synthesized anisotropic colloids was further investigated in chapter 4, starting with behaviour studies in alcoholic and aqueous dispersions. Here, the stability of the applied patches was studied in a broad pH range, discovering a release mechanism by disabling the electrostatic bonding between particle surface and polyelectrolyte ink. Furthermore, the absence of strong attractive forces between divalent particles in water was investigated using XPS measurements. These results lead to the conclusion that the transfer of small PDMS oligomers onto the patch surface is shielding charges, preventing colloidal agglomeration. However, based on this knowledge, further patch modifications for particle self-assembly were introduced including physical approaches using magnetic nano additives, chemical patch functionalization with avidin-biotin or the light responsive cyclodextrin-arylazopyrazoles coupling as well as particle surface modification for the synthesis of highly amphiphilic colloids. The successful coupling, its efficiency, stability and behaviour in different solvents were evaluated to find a suitable coupling system for future assembly experiments. Based on these results the possibility of more sophisticated structures by colloidal self-assembly is given. Certain findings needed further analysis to understand their underlying mechanics, including the relatively broad patch diameter distribution and the decreasing patch thickness for smaller silica particles. Mathematical assumptions for both effects are introduced in chapter 5. First, they demonstrate the connection between the naturally occurring particle size distribution and the broadening of the patch diameter, indicating an even higher precision for this µCP approach. Second, explaining the increase of contact area between particle and ink surface due to higher particle packaging, leading to a decrease in printing pressure for smaller particles. These calculations ultimately lead to the development of a new mechanical microcontact printing approach, using centrifugal forces for high pressure control and excellent parallel alignment of printing substrates. First results with this device and the comparison with previously conducted by-hand experiments conclude this research. It furthermore displays the advantages of such a device for future applications using a mechanical printing approach, especially for accessing even smaller nano particles with great precision and excellent yield. In conclusion, this work demonstrates the successful adjustment of the µCP approach using commercially available and affordable silica particles and polyelectrolytes for high flexibility, reduced costs and higher scale-up value. Furthermore, its was possible to increase the modification potential by introducing three-dimensional patches for additional functionalization volume. While keeping a high colloidal stability, different coupling systems showed the self-assembly capabilities of this toolbox for anisotropic particles. N2 - Diese Forschungsarbeit befasste sich mit der Frage, ob es möglich ist, bekannte Mikrokontaktdruckverfahren, zur Herstellung von anisotropen Bausteinen (Patchy Partikel), weiter zu vereinfachen. Dabei sollten gängige Chemikalien verwendet werden ohne einen Verlust in Reproduzierbarkeit, hoher Präzision und Feineinstellung der Janus-Balance zu erleiden. In Kapitel 2 wurden die verwendeten Mikrokontaktdruckmaterialien sowie deren elektrostatische Wechselwirkungen vorgestellt. Insbesondere handelte es sich dabei um Polydimethylsiloxan Stempel, Silikapartikel und hoch molekulare Polyethylenimin Tinte. All diese Produkte sind kommerziel in großen und bezahlbaren Mengen erhältlich. Nicht nur die Vorteile von polymeren Tinten im Gegensatz zu molekularen Tinten wurde beschrieben, sondern auch die hohe Flexibilität dieses Verfahrens bezüglich der verwendeten Druckkraft. Mit dieser Anpassung des Mikrokontaktdrucks, wurde eine neue Methode der Lösungsmittel unterstützten Partikelablösung ermöglicht, mit deren Hilfe ein einfaches Schalten zwischen zwei dimensionaler Oberflächenfunktionalisierung und drei dimensionalem Strukturdrucks möglich war, ohne Druckparameter oder Startchemikalien zu verändern. Dadurch konnte neu erschaffenes internes Volumen verwendet werden um Nanoadditive einzuführen und so zusätzliche physikalische Eigenschaften zu integrieren, ohne die Oberflächenchemie der Patches verändert wurde. Der Erfolg dieses Systems und seine erreichbaren Grenzen wurde gründlichst in Kapitel 3 erforscht, indem detaillierte Geometrieparameter der Patches einschließlich Durchmesser, Dicke und Ausbeute, erworben wurden. Hierfür wurden Silikapartikel in einem Größenbereich von 1µm bis 5µm mit unterschiedlichen Tintenkonzentrationen bedruckt, um Veränderungen erforschen zu können. Ein notwendiger Luftplasma Ätzschritt für die Produktion von trivalenten Partikeln, mit Hilfe des sogenannten ,,Sandwich‘‘-Drucks, wurde erläutert und vergleichende Untersuchen von einfach und zweifach modifizierten Bausteinen wurden durchgeführt. Zusätzlich dazu, wurde die Verwendung von strukturierten Stempel beschrieben. Die Ergebnisse verdeutlichen die exzellente Genauigkeit dieser Methode und öffnet den Weg um eine hoch höhere Präzision zu erreichen da weitere Parametere genau eingestellt und untersucht werden können, z.B. Luftfeuchtigkeit und Temperature während der Stempelbeladung. Die Performance der herstellten anisotropen Partikel wurde in Kapitel 4 mit Verhaltensstudien in alkoholischen und wässrigen Dispersionen getestet. Dabei wurde die Stabilität der Oberflächenfunktionalisierungen in einem breiten pH Bereich untersucht. Dadurch wurde ein Ablösungsmechanismus bei sehr hohen bzw. niedrigen pH-Werten entdeckt, der zur Deaktivierung elektrostatischer Wechselwirkungen zwischen Partikeloberfläche und Polyelektrolyte Tinte führte. Desweitern wurden die Abwesenheit starker Wechselwirkung der divalenten Partikel in Wasser mit Hilfe von XPS untersucht. Das Resultat zeigte, dass der Transfer kleinster PDMS Oligomere auf die Patchoberfläche zu einer Ladungsabschirmung führte. Dadurch konnte Agglomeration verhindert werden. Aufgrund dieser Ergebnisse wurden weitere Modifikationen für Partikelassemblierung durchgeführt. Hierfür wurde die Einführung von magnetischen Nanoadditiven, die Funktionalisierung mit Avidin-Biotin sowie dem Lichtschaltbaren Cyclodextrin-Arylazopyrazol Komplexen und die Partikeloberflächenfunktionalisierung zur Herstellung amphiphiler Teilchen untersucht. Die Effizienz der Kopplung, deren Stabilität sowie das Verhalten in unterschiedlichen Lösungsmittel wurde beschrieben. Basierend auf diesen Ergebnissen können noch anspruchsvollere Strukturen durch kolloidale Selbstassemblierung erzeugt werden. Einige Ergebnisse dieser Arbeit benötigten zusätzlicher Analyse um die zugrundeliegenden Mechaniken verstehen zu können. Dazu gehörte die relative hohe Streuung des Durchmessers für unterschiedliche Partikelsysteme, sowie das Ausdünnen des Patches mit kleineren Silikapartikeln. Mathematische Modelle in Kapitel 5 beschreiben beide Effekte. Dadurch war es möglich einen Zusammenhang zwischen der natürlichen Partikelgrößenverteilung sowie der Verbreitung des Patchdurchmessers festzustellen. Des Weiteren konnte eine Verkleinerung der Druckkraft durch eine Erhöhung der Packungsdichte für kleine Partikel beschrieben werden, wodurch eine Erklärung der Ausdünnung möglich war. All diese Berechnung führten schlussendlich zur Entwicklung eines neuen mechanischen Mikrokontaktdruckverfahrens, welches mit Hilfe von Zentrifugalkräften eine hohe Druckkontrolle und eine exzellente parallele Ausrichtung zwischen den Substraten ermöglicht. Erste Ergebnisse, sowie deren Vergleich mit bisher erhaltenen Resultaten schließen diese Forschung ab. Des Weiteren zeigt es die Vorteile einer solchen Vorrichtung für kommende Applikationen, besonders um noch kleinere Nanopartikel mit einer hohen Präzision modifizieren zu können. Zusammenfassend ist zu sagen, dass diese Forschung die erfolgreiche Anpassung des Mikrokontaktdruckverfahrens mit kommerziell erhältlichen und bezahlbaren Silikapartikeln und Polyelektrolyten demonstriert, um hohe Flexibilität, reduzierte Kosten und ein erweitertes Skalierungspotential zu bieten. Zusätzlich ist es gelungen, die Funktionalisierungsdichte zu erhöhen, indem drei dimensionaler Strukturdruck bisher ungenutztes Volumen schaffen konnte. Während eine hohe kolloidale Stabilität erhalten blieb, ist es gelungen unterschiedliche Kopplungssysteme zu nutzen, um das Selbstorganisationspotential dieser Toolbox für anisotrope Partikel aufzuzeigen. KW - patchy particles KW - microcontact printing KW - silica particles KW - anisotropic colloids KW - polyelectrolytes KW - Patchy Partikel KW - Mikrokontaktdruck KW - Silika Partikel KW - Anisotrope Kolloide KW - Polyelektrolyte Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-427731 ER - TY - JOUR A1 - Zimmermann, Marc A1 - Grigoriev, Dmitry A1 - Puretskiy, Nikolay A1 - Böker, Alexander T1 - Characteristics of microcontact printing with polyelectrolyte ink for the precise preparation of patches on silica particles JF - RSC Advances N2 - This publication demonstrates the abilities of a precise and straightforward microcontact printing approach for the preparation of patchy silica particles. In a broad particle size range, it is possible to finely tune the number and parameters of three-dimensional patches like diameter and thickness using only polyethyleneimine ink, poly(dimethoxysilane) as stamp material and a suitable release solvent. Y1 - 2018 U6 - https://doi.org/10.1039/c8ra07955b SN - 2046-2069 VL - 8 IS - 69 SP - 39241 EP - 39247 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Zimmermann, Marc A1 - John, Daniela A1 - Grigoriev, Dmitry A1 - Puretskiy, Nikolay A1 - Böker, Alexander T1 - From 2D to 3D patches on multifunctional particles BT - how microcontact printing creates a new dimension of functionality JF - Soft matter N2 - A straightforward approach for the precise multifunctional surface modification of particles with three-dimensional patches using microcontact printing is presented. By comparison to previous works it was possible to not only control the diameter, but also to finely tune the thickness of the deposited layer, opening up the way for three-dimensional structures and orthogonal multifunctionality. The use of PEI as polymeric ink, PDMS stamps for microcontact printing on silica particles and the influence of different solvents during particle release on the creation of functional particles with three-dimensional patches are described. Finally, by introducing fluorescent properties by incorporation of quantum dots into patches and by particle self-assembly via avidin-biotin coupling, the versatility of this novel modification method is demonstrated. Y1 - 2018 U6 - https://doi.org/10.1039/c8sm00163d SN - 1744-683X SN - 1744-6848 VL - 14 IS - 12 SP - 2301 EP - 2309 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Zivanovic, Vesna A1 - Kochovski, Zdravko A1 - Arenz, Christoph A1 - Lu, Yan A1 - Kneipp, Janina T1 - SERS and Cryo-EM Directly Reveal Different Liposome Structures during Interaction with Gold Nanoparticles JF - The journal of physical chemistry letters N2 - The combination of gold nanoparticles with liposomes is important for nano- and biotechnology. Here, we present direct, label-free characterization of liposome structure and composition at the site of its interaction with citrate-stabilized gold nanoparticles by surface-enhanced Raman scattering (SERS) and cryogenic electron microscopy (cryo-EM). Evidenced by the vibrational spectra and cryo-EM, the gold nanoparticles destroy the bilayer structure of interacting liposomes in the presence of a high amount of citrate, while at lower citrate concentration the nanoparticles interact with the surface of the intact liposomes. The spectra of phosphatidylcholine and phosphatidylcholine/sphingomyelin liposomes show that at the site of interaction the lipid chains are in the gel phase. The SERS spectra indicate that cholesterol has strong effects on the contacts of the vesicles with the nanoparticles. By combining cryo-EM and SERS, the structure and properties of lipid nanoparticle composites could be tailored for the development of drug delivery systems. Y1 - 2018 U6 - https://doi.org/10.1021/acs.jpclett.8b03191 SN - 1948-7185 VL - 9 IS - 23 SP - 6767 EP - 6772 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Öner, Ibrahim Halil A1 - Querebillo, Christine Joy A1 - David, Christin A1 - Gernert, Ulrich A1 - Walter, Carsten A1 - Driess, Matthias A1 - Leimkühler, Silke A1 - Ly, Khoa Hoang A1 - Weidinger, Inez M. T1 - High electromagnetic field enhancement of TiO2 nanotube electrodes JF - Angewandte Chemie : a journal of the Gesellschaft Deutscher Chemiker ; International edition N2 - We present the fabrication of TiO2 nanotube electrodes with high biocompatibility and extraordinary spectroscopic properties. Intense surface-enhanced resonance Raman signals of the heme unit of the redox enzyme Cytochromeb(5) were observed upon covalent immobilization of the protein matrix on the TiO2 surface, revealing overall preserved structural integrity and redox behavior. The enhancement factor could be rationally controlled by varying the electrode annealing temperature, reaching a record maximum value of over 70 at 475 degrees C. For the first time, such high values are reported for non-directly surface-interacting probes, for which the involvement of charge-transfer processes in signal amplification can be excluded. The origin of the surface enhancement is exclusively attributed to enhanced localized electric fields resulting from the specific optical properties of the nanotubular geometry of the electrode. KW - electromagnetic field enhancement KW - photonic crystals KW - spectro-electrochemistry KW - surface-enhanced Raman spectroscopy KW - TiO2 nanotubes Y1 - 2018 U6 - https://doi.org/10.1002/anie.201802597 SN - 1433-7851 SN - 1521-3773 VL - 57 IS - 24 SP - 7225 EP - 7229 PB - Wiley-VCH CY - Weinheim ER -