TY - THES A1 - Ulaganathan, Vamseekrishna T1 - Molecular fundamentals of foam fractionation T1 - Molekulare Grundlagen der Schaumfraktionierung N2 - Foam fractionation of surfactant and protein solutions is a process dedicated to separate surface active molecules from each other due to their differences in surface activities. The process is based on forming bubbles in a certain mixed solution followed by detachment and rising of bubbles through a certain volume of this solution, and consequently on the formation of a foam layer on top of the solution column. Therefore, systematic analysis of this whole process comprises of at first investigations dedicated to the formation and growth of single bubbles in solutions, which is equivalent to the main principles of the well-known bubble pressure tensiometry. The second stage of the fractionation process includes the detachment of a single bubble from a pore or capillary tip and its rising in a respective aqueous solution. The third and final stage of the process is the formation and stabilization of the foam created by these bubbles, which contains the adsorption layers formed at the growing bubble surface, carried up and gets modified during the bubble rising and finally ends up as part of the foam layer. Bubble pressure tensiometry and bubble profile analysis tensiometry experiments were performed with protein solutions at different bulk concentrations, solution pH and ionic strength in order to describe the process of accumulation of protein and surfactant molecules at the bubble surface. The results obtained from the two complementary methods allow understanding the mechanism of adsorption, which is mainly governed by the diffusional transport of the adsorbing protein molecules to the bubble surface. This mechanism is the same as generally discussed for surfactant molecules. However, interesting peculiarities have been observed for protein adsorption kinetics at sufficiently short adsorption times. First of all, at short adsorption times the surface tension remains constant for a while before it decreases as expected due to the adsorption of proteins at the surface. This time interval is called induction time and it becomes shorter with increasing protein bulk concentration. Moreover, under special conditions, the surface tension does not stay constant but even increases over a certain period of time. This so-called negative surface pressure was observed for BCS and BLG and discussed for the first time in terms of changes in the surface conformation of the adsorbing protein molecules. Usually, a negative surface pressure would correspond to a negative adsorption, which is of course impossible for the studied protein solutions. The phenomenon, which amounts to some mN/m, was rather explained by simultaneous changes in the molar area required by the adsorbed proteins and the non-ideality of entropy of the interfacial layer. It is a transient phenomenon and exists only under dynamic conditions. The experiments dedicated to the local velocity of rising air bubbles in solutions were performed in a broad range of BLG concentration, pH and ionic strength. Additionally, rising bubble experiments were done for surfactant solutions in order to validate the functionality of the instrument. It turns out that the velocity of a rising bubble is much more sensitive to adsorbing molecules than classical dynamic surface tension measurements. At very low BLG or surfactant concentrations, for example, the measured local velocity profile of an air bubble is changing dramatically in time scales of seconds while dynamic surface tensions still do not show any measurable changes at this time scale. The solution’s pH and ionic strength are important parameters that govern the measured rising velocity for protein solutions. A general theoretical description of rising bubbles in surfactant and protein solutions is not available at present due to the complex situation of the adsorption process at a bubble surface in a liquid flow field with simultaneous Marangoni effects. However, instead of modelling the complete velocity profile, new theoretical work has been started to evaluate the maximum values in the profile as characteristic parameter for dynamic adsorption layers at the bubble surface more quantitatively. The studies with protein-surfactant mixtures demonstrate in an impressive way that the complexes formed by the two compounds change the surface activity as compared to the original native protein molecules and therefore lead to a completely different retardation behavior of rising bubbles. Changes in the velocity profile can be interpreted qualitatively in terms of increased or decreased surface activity of the formed protein-surfactant complexes. It was also observed that the pH and ionic strength of a protein solution have strong effects on the surface activity of the protein molecules, which however, could be different on the rising bubble velocity and the equilibrium adsorption isotherms. These differences are not fully understood yet but give rise to discussions about the structure of protein adsorption layer under dynamic conditions or in the equilibrium state. The third main stage of the discussed process of fractionation is the formation and characterization of protein foams from BLG solutions at different pH and ionic strength. Of course a minimum BLG concentration is required to form foams. This minimum protein concentration is a function again of solution pH and ionic strength, i.e. of the surface activity of the protein molecules. Although at the isoelectric point, at about pH 5 for BLG, the hydrophobicity and hence the surface activity should be the highest, the concentration and ionic strength effects on the rising velocity profile as well as on the foamability and foam stability do not show a maximum. This is another remarkable argument for the fact that the interfacial structure and behavior of BLG layers under dynamic conditions and at equilibrium are rather different. These differences are probably caused by the time required for BLG molecules to adapt respective conformations once they are adsorbed at the surface. All bubble studies described in this work refer to stages of the foam fractionation process. Experiments with different systems, mainly surfactant and protein solutions, were performed in order to form foams and finally recover a solution representing the foamed material. As foam consists to a large extent of foam lamella – two adsorption layers with a liquid core – the concentration in a foamate taken from foaming experiments should be enriched in the stabilizing molecules. For determining the concentration of the foamate, again the very sensitive bubble rising velocity profile method was applied, which works for any type of surface active materials. This also includes technical surfactants or protein isolates for which an accurate composition is unknown. N2 - Die Fraktionierung ist ein Trennprozess, bei dem verschiedene Materialien auf Grund ihrer Eigenschaften voneinander getrennt werden. Bei der Sedimentation von Teilchen in einer Flüssigkeit dient deren unterschiedliche Dichte zu ihrer Trennung, da schwere Teilchen schneller auf den Boden des Gefäßes sinken als leichtere. Bei der Schaumfraktionierung als Trennprozess dient zur Trennung verschiedener Moleküle in einer Lösung deren Grenzflächenaktivität, d.h. das unterschiedliche Vermögen der Moleküle, sich an der Oberfläche von Gasblasen anzureichern. Durch das Aufsteigen der Blasen in der Flüssigkeit werden daher die Moleküle mit der höheren Grenzflächenaktivität stärker in der Schaumschicht angereichert als die weniger stark grenzflächenaktiven Komponenten. Ziel der vorliegenden Dissertation ist es, den Prozess der Schaumfraktionierung hinsichtlich der Trennung von grenzflächenaktiven Molekülen zu analysieren. Die Bildung von Blasen und deren anschließendes Aufsteigen in der Lösung kann als wichtigstes Element in diesem Prozess angesehen werden. Es ist bekannt, dass die Geschwindigkeit aufsteigender Luftblasen in Wasser eine charakteristische Größe ist, die durch die Anwesenheit grenzflächenaktiver Stoffe (Tenside, Proteine) stark verringert wird. Die vorliegende Dissertation zeigt für das ausgewählte Protein ß-Lactoglobulin und für verschiedene Lebensmittel-Tenside, dass die Messung der Aufstiegsgeschwindigkeit von Luftblasen zur Beurteilung der Anreicherung dieser Moleküle an der Blasenoberfläche ausgezeichnet geeignet ist. Die experimentellen Ergebnisse bei verschiedenen Lösungsbedingungen, wie Konzentration von Protein bzw. Tensid, pH-Wert und Ionenstärke der Lösung, zeigen deutlich, dass die Anreicherung der Proteinmoleküle wesentlich stärker ist als die von Tensiden. Dies gilt auch für Tenside mit einer sehr hohen Grenzflächenaktivität, was im Wesentlichen durch die extrem feste (nahezu irreversible) Anreicherung der Proteinmoleküle zu erklären ist. Die erzielten experimentellen Ergebnisse dienen jetzt als Grundlage für die Weiterentwicklung der Theorie aufsteigender Blasen, die besonders von der Dynamik der Anreicherung der Moleküle geprägt ist. Neueste Untersuchungen haben gezeigt, dass auf der Grundlage dieser experimentellen Ergebnisse erstmals die Geschwindigkeitskonstanten der Anreicherung (Adsorption und Desorption) unabhängig voneinander ermittelt werden können. KW - adsorption KW - air-water interface KW - protein KW - foam KW - rising bubble KW - Adsorption KW - Wasser/Luft Grenzflächen KW - steigende Blasen KW - Schaum KW - Beta-Lactoglobulin Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-94263 ER - TY - THES A1 - Ledendecker, Marc T1 - En route towards advanced catalyst materials for the electrocatalytic water splitting reaction T1 - Innovative Katalysatormaterialien für die elektrokatalytische Wasserspaltung BT - mechanistic insights into the formation of metal carbides, phosphides, sulfides and nitrides BT - mechanistische Einblicke in die Bildung von Metallcarbiden, -phosphiden, -sulfiden und –nitriden N2 - The thesis on hand deals with the development of new types of catalysts based on pristine metals and ceramic materials and their application as catalysts for the electrocatalytic water splitting reaction. In order to breathe life into this technology, cost-efficient, stable and efficient catalysts are imploringly desired. In this manner, the preparation of Mn-, N-, S-, P-, and C-containing nickel materials has been investigated together with the theoretical and electrochemical elucidation of their activity towards the hydrogen (and oxygen) evolution reaction. The Sabatier principle has been used as the principal guideline towards successful tuning of catalytic sites. Furthermore, two pathways have been chosen to ameliorate the electrocatalytic performance, namely, the direct improvement of intrinsic properties through appropriate material selection and secondly the increase of surface area of the catalytic material with an increased amount of active sites. In this manner, bringing materials with optimized hydrogen adsorption free energy onto high surface area support, catalytic performances approaching the golden standards of noble metals were feasible. Despite varying applied synthesis strategies (wet chemistry in organic solvents, ionothermal reaction, gas phase reaction), one goal has been systematically pursued: to understand the driving mechanism of the growth. Moreover, deeper understanding of inherent properties and kinetic parameters of the catalytic materials has been gained. N2 - Wasserstoff ist einer der vielversprechendsten Energieträger aufgrund seiner hohen massenbezogenen Energiedichte. In diesem Zusammenhang erlaubt die elektrokatalytische Wasserspaltung die einfache und saubere Herstellung von Wasserstoff. Allerdings erfordert die Trennung der relativ starken Wasserstoff-Sauerstoff Bindungen beträchtliche Energie und teure Edelmetalle wie Platin oder Iridium zeigen die höchste katalytische Aktivität mit geringer Überspannung und hohen Stromdichten was zu einem guten Wirkungsgrad führt. Aus dieser Motivation heraus befasst sich die vorliegende Arbeit mit der Entwicklung neuer Katalysatoren, die auf Metalllegierungen und Keramiken basieren, sowie ihrer Anwendung für die elektrokatalytische Wasserspaltung. Besonderes Augenmerk wurde auf die Herstellung von kostengünstigen mangan-, stickstoff-, schwefel-, phosphor- und kohlenstoffhaltigen Nickelwerkstoffen gelegt und deren Aktivität experimentell und theoretisch erforscht. Nickel wurde aufgrund seines relativ günstigen Preises und hohen Vorkommens gewählt. Das Prinzip von Sabatier – die Wechselwirkung zwischen Adsorbat und Substrat sollte weder zu stark noch zu schwach sein – wurde als Leitfaden für die Entwicklung effizienter Katalysatoren benutzt. Trotz unterschiedlich angewendeter Synthesestrategien (Synthese in organischen Lösungsmitteln, ionothermale Reaktion oder Gasphasenreaktion), wurde zusätzlich systematisch ein weiteres Ziel verfolgt: Die Wachstums- und Entstehungsmechanismen dieser Materialen zu ergründen. Darüber hinaus wurde ein tieferes Verständnis der inhärenten Eigenschaften und kinetischen Parameter der katalytischen Materialien gewonnen. KW - Wasserspaltung KW - Katalysatoren KW - Keramik KW - Legierungen KW - Materialwissenschaft KW - HER KW - OER KW - water splitting reaction KW - ceramics KW - metal alloys KW - material science KW - HER KW - OER Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-93296 ER - TY - GEN A1 - Zabel, André A1 - Winter, Alette A1 - Kelling, Alexandra A1 - Schilde, Uwe A1 - Strauch, Peter T1 - Tetrabromidocuprates(II)-Synthesis, Structure and EPR N2 - Metal-containing ionic liquids (ILs) are of interest for a variety of technical applications, e.g., particle synthesis and materials with magnetic or thermochromic properties. In this paper we report the synthesis of, and two structures for, some new tetrabromidocuprates(II) with several “onium” cations in comparison to the results of electron paramagnetic resonance (EPR) spectroscopic analyses. The sterically demanding cations were used to separate the paramagnetic Cu(II) ions for EPR measurements. The EPR hyperfine structure in the spectra of these new compounds is not resolved, due to the line broadening resulting from magnetic exchange between the still-incomplete separated paramagnetic Cu(II) centres. For the majority of compounds, the principal g values (g|| and gK) of the tensors could be determined and information on the structural changes in the [CuBr4]2- anions can be obtained. The complexes have high potential, e.g., as ionic liquids, as precursors for the synthesis of copper bromide particles, as catalytically active or paramagnetic ionic liquids. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 226 KW - tetrabromidocuprate(II) KW - X-ray structure KW - electron paramagnetic resonance KW - copper(II) Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-91470 ER - TY - JOUR A1 - Zabel, André A1 - Winter, Alette A1 - Kelling, Alexandra A1 - Schilde, Uwe A1 - Strauch, Peter T1 - Tetrabromidocuprates(II)-Synthesis, Structure and EPR JF - International journal of molecular sciences N2 - Metal-containing ionic liquids (ILs) are of interest for a variety of technical applications, e.g., particle synthesis and materials with magnetic or thermochromic properties. In this paper we report the synthesis of, and two structures for, some new tetrabromidocuprates(II) with several “onium” cations in comparison to the results of electron paramagnetic resonance (EPR) spectroscopic analyses. The sterically demanding cations were used to separate the paramagnetic Cu(II) ions for EPR measurements. The EPR hyperfine structure in the spectra of these new compounds is not resolved, due to the line broadening resulting from magnetic exchange between the still-incomplete separated paramagnetic Cu(II) centres. For the majority of compounds, the principal g values (g|| and gK) of the tensors could be determined and information on the structural changes in the [CuBr4]2- anions can be obtained. The complexes have high potential, e.g., as ionic liquids, as precursors for the synthesis of copper bromide particles, as catalytically active or paramagnetic ionic liquids. KW - tetrabromidocuprate(II) KW - X-ray structure KW - electron paramagnetic resonance KW - copper(II) Y1 - 2016 U6 - https://doi.org/10.3390/ijms17040596 VL - 17 IS - 4 PB - MDPI CY - Basel ER - TY - THES A1 - Täuber, Karoline T1 - Porous Membranes from Imidazolium- and Pyridinium-based Poly(ionic liquid)s with Targeted Properties Y1 - 2016 ER - TY - JOUR A1 - Prinz, Julia A1 - Heck, Christian A1 - Ellerik, Lisa A1 - Merk, Virginia A1 - Bald, Ilko T1 - DNA origami based Au–Ag-core–shell nanoparticle dimers with single-molecule SERS sensitivity JF - Nanoscale N2 - DNA origami nanostructures are a versatile tool to arrange metal nanostructures and other chemical entities with nanometer precision. In this way gold nanoparticle dimers with defined distance can be constructed, which can be exploited as novel substrates for surface enhanced Raman scattering (SERS). We have optimized the size, composition and arrangement of Au/Ag nanoparticles to create intense SERS hot spots, with Raman enhancement up to 1010, which is sufficient to detect single molecules by Raman scattering. This is demonstrated using single dye molecules (TAMRA and Cy3) placed into the center of the nanoparticle dimers. In conjunction with the DNA origami nanostructures novel SERS substrates are created, which can in the future be applied to the SERS analysis of more complex biomolecular targets, whose position and conformation within the SERS hot spot can be precisely controlled. Y1 - 2016 U6 - https://doi.org/10.1039/C5NR08674D IS - 8 SP - 5612 EP - 5620 PB - RSC Publishing CY - Cambridge ER - TY - GEN A1 - Prinz, Julia A1 - Heck, Christian A1 - Ellerik, Lisa A1 - Merk, Virginia A1 - Bald, Ilko T1 - DNA origami based Au–Ag-core–shell nanoparticle dimers with single-molecule SERS sensitivity N2 - DNA origami nanostructures are a versatile tool to arrange metal nanostructures and other chemical entities with nanometer precision. In this way gold nanoparticle dimers with defined distance can be constructed, which can be exploited as novel substrates for surface enhanced Raman scattering (SERS). We have optimized the size, composition and arrangement of Au/Ag nanoparticles to create intense SERS hot spots, with Raman enhancement up to 1010, which is sufficient to detect single molecules by Raman scattering. This is demonstrated using single dye molecules (TAMRA and Cy3) placed into the center of the nanoparticle dimers. In conjunction with the DNA origami nanostructures novel SERS substrates are created, which can in the future be applied to the SERS analysis of more complex biomolecular targets, whose position and conformation within the SERS hot spot can be precisely controlled. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 221 Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-89714 SP - 5612 EP - 5620 ER - TY - JOUR A1 - Mondal, Suvendu Sekhar A1 - Marquardt, Dorothea A1 - Janiak, Christoph A1 - Holdt, Hans-Jürgen T1 - Use of a 4,5-dicyanoimidazolate anion based ionic liquid for the synthesis of iron and silver nanoparticles JF - Dalton transactions : an international journal of inorganic chemistry N2 - Sixteen new ionic liquids (ILs) with tetraethylammonium, 1-butyl-3-methylimidazolium, 3-methyl-1-octylimidazolium and tetrabutylphosphonium cations paired with 2-substituted 4,5-dicyanoimidazolate anions (substituent at C2 = methyl, trifluoromethyl, pentafluoroethyl, N,N′-dimethyl amino and nitro) have been synthesized and characterized by using differential scanning calorimetry (DSC), thermogravimetric analysis (TGA). The effects of cation and anion type and structure of the resulting ILs, including several room temperature ionic liquids (RTILs), are reflected in the crystallization, melting points and thermal decomposition of the ILs. ILs exhibited large liquid and crystallization ranges and formed glasses on cooling with glass transition temperatures in the range of −22 to −71 °C. We selected one of the newly designed ILs due to its bigger size, compared to the common conventional IL anion and high electron-withdrawing nitrile group leads to an overall stabilization anion that may stabilize the metal nanoparticles. Stable and better separated iron and silver nanoparticles are obtained by the decomposition of corresponding Fe2(CO)9 and AgPF6, respectively, under N2-atmosphere in newly designed nitrile functionalized 4,5-dicyanoimidazolate anion based IL. Very small and uniform size for Fe-nanoparticles of about 1.8 ± 0.6 nm were achieved without any additional stabilizers or capping molecules. Comparatively bigger size of Ag-nanoparticles was obtained through the reduction of AgPF6 by hydrogen gas. Additionally, the AgPF6 precursor was decomposed under microwave irradiation (MWI), fabricating nut-in-shell-like, that is, core-separated-from-shell Ag-nano-structures. Y1 - 2016 U6 - https://doi.org/10.1039/C6DT00225K SN - 1477-9226 IS - 45 SP - 5476 EP - 5483 PB - Royal Society of Chemistry CY - Cambridge ER -