@phdthesis{Flatken2022, author = {Flatken, Marion A.}, title = {The early stages of halide perovskites thin film formation}, doi = {10.25932/publishup-55259}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-552599}, school = {Universit{\"a}t Potsdam}, pages = {VI, 144}, year = {2022}, abstract = {As climate change worsens, there is a growing urgency to promote renewable energies and improve their accessibility to society. Here, solar energy harvesting is of particular importance. Currently, metal halide perovskite (MHP) solar cells are indispensable in future solar energy generation research. MHPs are crystalline semiconductors increasingly relevant as low-cost, high-performance materials for optoelectronics. Their processing from solution at low temperature enables easy fabrication of thin film elements, encompassing solar cells and light-emitting diodes or photodetectors. Understanding the coordination chemistry of MHPs in their precursor solution would allow control over the thin film crystallization, the material properties and the final device performance. In this work, we elaborate on the key parameters to manipulate the precursor solution with the long-term objective of enabling systematic process control. We focus on the nanostructural characterization of the initial arrangements of MHPs in the precursor solutions. Small-angle scattering is particularly well suited for measuring nanoparticles in solution. This technique proved to be valuable for the direct analyzes of perovskite precursor solutions in standard processing concentrations without causing radiation damage. We gain insights into the chemical nature of widely used precursor structures such as methylammonium lead iodide (MAPbI3), presenting first insights into the complex arrangements and interaction within this precursor state. Furthermore, we transfer the preceding results to other more complex perovskite precursors. The influence of compositional engineering is investigated using the addition of alkali cations as an example. As a result, we propose a detailed working mechanism on how the alkali cations suppress the formation of intermediate phases and improve the quality of the crystalline thin film. In addition, we investigate the crystallization process of a tin-based perovskite composition (FASnI3) under the influence of fluoride chemistry. We prove that the frequently used additive, tin fluoride (SnF2), selectively binds undesired oxidized tin (Sn(IV)) in the precursor solution. This prevents its incorporation into the actual crystal structure and thus reduces the defect density of the material. Furthermore, SnF2 leads to a more homogeneous crystal growth process, which results in improved crystal quality of the thin film material. In total, this study provides a detailed characterization of the complex system of perovskite precursor chemistry. We thereby cover relevant parameters for future MHP solar cell process control, such as (I) the environmental impact based on concentration and temperature (II) the addition of counter ions to reduce the diffuse layer surrounding the precursor nanostructures and (III) the targeted use of additives to eliminate unwanted components selectively and to ensure a more homogeneous crystal growth.}, language = {en} } @phdthesis{Bastian2022, author = {Bastian, Philipp U.}, title = {Core-shell upconversion nanoparticles - investigation of dopant intermixing and surface modification}, doi = {10.25932/publishup-55160}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-551607}, school = {Universit{\"a}t Potsdam}, pages = {XII, 108, xxiii}, year = {2022}, abstract = {Frequency upconversion nanoparticles (UCNPs) are inorganic nanocrystals capable to up-convert incident photons of the near-infrared electromagnetic spectrum (NIR) into higher energy photons. These photons are re-emitted in the range of the visible (Vis) and even ultraviolet (UV) light. The frequency upconversion process (UC) is realized with nanocrystals doped with trivalent lanthanoid ions (Ln(III)). The Ln(III) ions provide the electronic (excited) states forming a ladder-like electronic structure for the Ln(III) electrons in the nanocrystals. The absorption of at least two low energy photons by the nanoparticle and the subsequent energy transfer to one Ln(III) ion leads to the promotion of one Ln(III) electron into higher excited electronic states. One high energy photon will be emitted during the radiative relaxation of the electron in the excited state back into the electronic ground state of the Ln(III) ion. The excited state electron is the result of the previous absorption of at least two low energy photons. The UC process is very interesting in the biological/medical context. Biological samples (like organic tissue, blood, urine, and stool) absorb high-energy photons (UV and blue light) more strongly than low-energy photons (red and NIR light). Thanks to a naturally occurring optical window, NIR light can penetrate deeper than UV light into biological samples. Hence, UCNPs in bio-samples can be excited by NIR light. This possibility opens a pathway for in vitro as well as in vivo applications, like optical imaging by cell labeling or staining of specific organic tissue. Furthermore, early detection and diagnosis of diseases by predictive and diagnostic biomarkers can be realized with bio-recognition elements being labeled to the UCNPs. Additionally, "theranostic" becomes possible, in which the identification and the treatment of a disease are tackled simultaneously. For this to succeed, certain parameters for the UCNPs must be met: high upconversion efficiency, high photoluminescence quantum yield, dispersibility, and dispersion stability in aqueous media, as well as availability of functional groups to introduce fast and easy bio-recognition elements. The UCNPs used in this work were prepared with a solvothermal decomposition synthesis yielding in particles with NaYF4 or NaGdF4 as host lattice. They have been doped with the Ln(III) ions Yb3+ and Er3+, which is only one possible upconversion pair. Their upconversion efficiency and photoluminescence quantum yield were improved by adding a passivating shell to reduce surface quenching. However, the brightness of core-shell UCNPs stays behind the expectations compared to their bulk material (being at least μm-sized particles). The core-shell structures are not clearly separated from each other, which is a topic in literature. Instead, there is a transition layer between the core and the shell structure, which relates to the migration of the dopants within the host lattice during the synthesis. The ion migration has been examined by time-resolved laser spectroscopy and the interlanthanoid resonance energy transfer (LRET) in the two different host lattices from above. The results are presented in two publications, which dealt with core-shell-shell structured nanoparticles. The core is doped with the LRET-acceptor (either Nd3+ or Pr3+). The intermediate shell serves as an insulation shell of pure host lattice material, whose shell thickness has been varied within one set of samples having the same composition, so that the spatial separation of LRET-acceptor and -donor changes. The outer shell with the same host lattice is doped with the LRET-donor (Eu3+). The effect of the increasing insulation shell thickness is significant, although the LRET cannot be suppressed completely. Next to the Ln(III) migration within a host lattice, various phase transfer reactions were investigated in order to subsequently perform surface modifications for bioapplications. One result out of this research has been published using a promising ligand, that equips the UCNP with bio-modifiable groups and has good potential for bio-medical applications. This particular ligand mimics natural occurring mechanisms of mussel protein adhesion and of blood coagulation, which is why the UCNPs are encapsulated very effectively. At the same time, bio-functional groups are introduced. In a proof-of-concept, the encapsulated UCNP has been coupled successfully with a dye (which is representative for a biomarker) and the system's photoluminescence properties have been investigated.}, language = {en} } @phdthesis{Freyse2022, author = {Freyse, Daniel}, title = {Thioacetal-Bausteine f{\"u}r Fluoreszenzfarbstoffe und molekulare St{\"a}be}, doi = {10.25932/publishup-54925}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-549252}, school = {Universit{\"a}t Potsdam}, pages = {292}, year = {2022}, abstract = {Im Rahmen dieser Dissertation wurde der Sauerstoff im Grundger{\"u}st der [1,3]-Dioxolo[4.5-f]benzodioxol-Fluoreszenzfarbstoffe (DBD-Fluoreszenzfarbstoffe) vollst{\"a}ndig mit Schwefel ausgetauscht und daraus eine neue Klasse von Fluoreszenzfarbstoffen entwickelt, die Benzo[1,2-d:4,5-d']bis([1,3]dithiol)-Fluorophore (S4-DBD-Fluorophore). Insgesamt neun der besonders interessanten, difunktionalisierten Vertreter konnten synthetisiert werden, die sich in ihren elektronenziehenden Gruppen und in ihrer Anordnung unterschieden. Durch den Austausch von Sauerstoff mit Schwefel kam es zu teilweise auff{\"a}lligen Ver{\"a}nderungen in den Fluoreszenzparametern, wie eine Abnahme der Fluoreszenzquantenausbeuten und -lebenszeiten aber auch eine deutliche Rotverschiebung in den Absorptions- und Emissionswellenl{\"a}ngen mit großen STOKES-Verschiebungen. Damit sind die S4-DBD-Fluorophore eine wertvolle Erg{\"a}nzung f{\"u}r die DBD-Farbstoffe. Die Ursachen f{\"u}r die Abnahme der Lebenszeiten und Quantenausbeuten konnte auf eine hohe Besetzung des Triplett-Zustandes zur{\"u}ckgef{\"u}hrt werden, welcher durch die verst{\"a}rkten Spin-Bahn-Kopplungen des Schwefels hervorgerufen wird. Zusammen mit dem Arbeitskreis physikalische Chemie der Universit{\"a}t Potsdam konnten auch die photophysikalischen Prozesse {\"u}ber die Transienten-Absorptionsspektroskopie (TAS) aufgekl{\"a}rt werden. Eine Strategie zur Funktionalisierung der S4-DBD-Farbstoffe am Thioacetalger{\"u}st konnte entwickelt werden. So gelang es Alkohol-, Propargyl-, Azid-, NHS-Ester-, Carbons{\"a}ure-, Maleimid- und Tosyl-Gruppen an S4-DBD-Dialdehyden anzubringen. Erweiternd wurden molekulare St{\"a}be auf Basis von Schwefel-Oligo-Spiro-Ketalen (SOSKs) untersucht, bei denen Sauerstoff durch Schwefel ersetzt wurde. Hier konnten die Synthesen der l{\"o}slichkeitsvermittelnden TER-Muffe und auch des Tetrathiapentaerythritols als Grundbaustein deutlich verbessert werden. Aus diesen konnte ein einfaches SOSK-Polymer hergestellt werden. Weitere Versuche zum Aufbau eines Stabes m{\"u}ssen aber noch untersucht werden. Um einen S-OSK-Stab aufzubauen hat sich dabei die Dithiocarbonat-Gruppe in ersten Versuchen als potenzielle geeignete Schutzgruppe f{\"u}r das Tetrathiapentaerythritol herausgestellt.}, language = {de} } @phdthesis{Luedecke2022, author = {L{\"u}decke, Nils}, title = {Bio-sourced adsorbing poly(2-oxazoline)s mimicking mussel glue proteins for antifouling applications}, doi = {10.25932/publishup-54983}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-549836}, school = {Universit{\"a}t Potsdam}, pages = {iii, 224}, year = {2022}, abstract = {Nature developed countless systems for many applications. In maritime environments, several organisms established extra-ordinary mechanisms to attach to surfaces. Over the past years, the scientific interest to employ those mechanisms for coatings and long-lasting adhering materials gained significant attention. This work describes the synthesis of bio-inspired adsorbing copoly(2-oxazoline)s for surface coatings with protein repelling effects, mimicking mussel glue proteins. From a set of methoxy substituted phenyl, benzyl, and cinnamyl acids, 2-oxazoline monomers were synthesized. All synthesized 2-oxazolines were analyzed by FT-IR spectroscopy, NMR spectroscopy, and EI mass spectrometry. With those newly synthesized 2-oxazoline monomers and 2-ethyl-2-oxazoline, kinetic studies concerning homo- and copolymerization in a microwave reactor were conducted. The success of the polymerization reactions was demonstrated by FT-IR spectroscopy, NMR spectroscopy, MALDI-TOF mass spectrometry, and size exclusion chromatography (SEC). The copolymerization of 2-ethyl-2-oxazoline with a selection of methoxy-substituted 2-oxazolines resulted in water-soluble copolymers. To release the adsorbing catechol and cationic units, the copoly(2-oxazoline)s were modified. The catechol units were (partially) released by a methyl aryl ether cleavage reaction. A subsequent partial acidic hydrolysis of the ethyl unit resulted in mussel glue protein-inspired catechol and cation-containing copolymers. The modified copolymers were analyzed by NMR spectroscopy, UV-VIS spectroscopy, and SEC. The catechol- and cation-containing copolymers and their precursors were examined by a Quartz Crystal Microbalance with Dissipation (QCM-D), so study the adsorption performance on gold, borosilicate, iron, and polystyrene surfaces. An exemplary study revealed that a catechol and cation-containing copoly(2-oxazoline)-coated gold surface exhibits strong protein repelling properties.}, language = {en} } @phdthesis{MathieuGaedke2021, author = {Mathieu-Gaedke, Maria}, title = {Grafting-to and grafting-from proteins - synthesis and characterization of protein-polymer conjugates on the way to biohybrid membrane materials}, doi = {10.25932/publishup-54292}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-542921}, school = {Universit{\"a}t Potsdam}, pages = {XVIII, 149}, year = {2021}, abstract = {The incorporation of proteins in artificial materials such as membranes offers great opportunities to avail oneself the miscellaneous qualities of proteins and enzymes perfected by nature over millions of years. One possibility to leverage proteins is the modification with artificial polymers. To obtain such protein-polymer conjugates, either a polymer can be grown from the protein surface (grafting-from) or a pre-synthesized polymer attached to the protein (grafting-to). Both techniques were used to synthesize conjugates of different proteins with thermo-responsive polymers in this thesis. First, conjugates were analyzed by protein NMR spectroscopy. Typical characterization techniques for conjugates can verify the successful conjugation and give hints on the secondary structure of the protein. However, the 3-dimensional structure, being highly important for the protein function, cannot be probed by standard techniques. NMR spectroscopy is a unique method allowing to follow even small alterations in the protein structure. A mutant of the carbohydrate binding module 3b (CBM3bN126W) was used as model protein and functionalized with poly(N-isopropylacrylamide). Analysis of conjugates prepared by grafting-to or grafting-from revealed a strong impact of conjugation type on protein folding. Whereas conjugates prepared by grafting a pre-formed polymer to the protein resulted in complete preservation of protein folding, grafting the polymer from the protein surface led to (partial) disruption of the protein structure. Next, conjugates of bovine serum albumin (BSA) as cheap and easily accessible protein were synthesized with PNIPAm and different oligoethylene glycol (meth)acrylates. The obtained protein-polymer conjugates were analyzed by an in-line combination of size exclusion chromatography and multi-angle laser light scattering (SEC-MALS). This technique is particular advantageous to determine molar masses, as no external calibration of the system is needed. Different SEC column materials and operation conditions were tested to evaluate the applicability of this system to determine absolute molar masses and hydrodynamic properties of heterogeneous conjugates prepared by grafting-from and grafting-to. Hydrophobic and non-covalent interactions of conjugates lead to error-prone values not in accordance to expected molar masses based on conversions and extents of modifications. As alternative to this method, conjugates were analyzed by sedimentation velocity analytical ultracentrifugation (SV-AUC) to gain insights in the hydrodynamic properties and how they change after conjugation. Within a centrifugal field, a sample moves and fractionates according to the mass, density, and shape of its individual components. Conjugates of BSA with PNIPAm were analyzed below and above the cloud point temperature of the thermo-responsive polymer component. It was identified that the polymer characteristics were transferred to the conjugate molecule which than showed a decreased ideality - defined as increased deviation from a perfect sphere model - below and increased ideality above the cloud point temperature. This effect can be attributed to an arrangement of the polymer chain pointing towards the solvent (expanded state) or snuggling around the protein surface depending on the applied temperature. The last project dealt with the synthesis of ferric hydroxamate uptake protein component A (FhuA)-polymer conjugates as building blocks for novel membrane materials. The shape of FhuA can be described as barrel and removal of a cork domain inside the protein results in a passive channel aimed to be utilized as pores in the membrane system. The polymer matrix surrounding the membrane protein is composed of a thermo-responsive and a UV-crosslinkable part. Therefore, an external trigger for covalent immobilization of these building blocks in the membrane and switchability of the membrane between different states was incorporated. The overall performance of membranes prepared by a drying-mediated self-assembly approach was evaluated by permeability and size exclusion experiments. The obtained membranes displayed an insufficiency in interchain crosslinking and therefore a lack in performance. Furthermore, the aimed switch between a hydrophilic and hydrophobic state of the polymer matrix did not occur. Correspondingly, size exclusion experiments did not result in a retention of analytes larger than the pores defined by the dimension of the used FhuA variant. Overall, different paths to generate protein-polymer conjugates by either grafting-from or grafting-to the protein surface were presented paving the way to the generation of new hybrid materials. Different analytical methods were utilized to describe the folding and hydrodynamic properties of conjugates providing a deeper insight in the overall characteristics of these seminal building blocks.}, language = {en} } @phdthesis{Saretia2021, author = {Saretia, Shivam}, title = {Modulating ultrathin films of semi-crystalline oligomers by Langmuir technique}, doi = {10.25932/publishup-54210}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-542108}, school = {Universit{\"a}t Potsdam}, pages = {XIII, 109}, year = {2021}, abstract = {Polymeric films and coatings derived from semi-crystalline oligomers are of relevance for medical and pharmaceutical applications. In this context, the material surface is of particular importance, as it mediates the interaction with the biological system. Two dimensional (2D) systems and ultrathin films are used to model this interface. However, conventional techniques for their preparation, such as spin coating or dip coating, have disadvantages, since the morphology and chain packing of the generated films can only be controlled to a limited extent and adsorption on the substrate used affects the behavior of the films. Detaching and transferring the films prepared by such techniques requires additional sacrificial or supporting layers, and free-standing or self supporting domains are usually of very limited lateral extension. The aim of this thesis is to study and modulate crystallization, melting, degradation and chemical reactions in ultrathin films of oligo(ε-caprolactone)s (OCL)s with different end-groups under ambient conditions. Here, oligomeric ultrathin films are assembled at the air-water interface using the Langmuir technique. The water surface allows lateral movement and aggregation of the oligomers, which, unlike solid substrates, enables dynamic physical and chemical interaction of the molecules. Parameters like surface pressure (π), temperature and mean molecular area (MMA) allow controlled assembly and manipulation of oligomer molecules when using the Langmuir technique. The π-MMA isotherms, Brewster angle microscopy (BAM), and interfacial infrared spectroscopy assist in detecting morphological and physicochemical changes in the film. Ultrathin films can be easily transferred to the solid silicon surface via Langmuir Schaefer (LS) method (horizontal substrate dipping). Here, the films transferred on silicon are investigated using atomic force microscopy (AFM) and optical microscopy and are compared to the films on the water surface. The semi-crystalline morphology (lamellar thicknesses, crystal number densities, and lateral crystal dimensions) is tuned by the chemical structure of the OCL end-groups (hydroxy or methacrylate) and by the crystallization temperature (Tc; 12 or 21 °C) or MMAs. Compression to lower MMA of ~2 {\AA}2, results in the formation of a highly crystalline film, which consists of tightly packed single crystals. Preparation of tightly packed single crystals on a cm2 scale is not possible by conventional techniques. Upon transfer to a solid surface, these films retain their crystalline morphology whereas amorphous films undergo dewetting. The melting temperature (Tm) of OCL single crystals at the water and the solid surface is found proportional to the inverse crystal thickness and is generally lower than the Tm of bulk PCL. The impact of OCL end-groups on melting behavior is most noticeable at the air-solid interface, where the methacrylate end-capped OCL (OCDME) melted at lower temperatures than the hydroxy end-capped OCL (OCDOL). When comparing the underlying substrate, melting/recrystallization of OCL ultrathin films is possible at lower temperatures at the air water interface than at the air-solid interface, where recrystallization is not visible. Recrystallization at the air-water interface usually occurs at a higher temperature than the initial Tc. Controlled degradation is crucial for the predictable performance of degradable polymeric biomaterials. Degradation of ultrathin films is carried out under acidic (pH ~ 1) or enzymatic catalysis (lipase from Pseudomonas cepcia) on the water surface or on a silicon surface as transferred films. A high crystallinity strongly reduces the hydrolytic but not the enzymatic degradation rate. As an influence of end-groups, the methacrylate end-capped linear oligomer, OCDME (~85 ± 2 \% end-group functionalization) hydrolytically degrades faster than the hydroxy end capped linear oligomer, OCDOL (~95 ± 3 \% end-group functionalization) at different temperatures. Differences in the acceleration of hydrolytic degradation of semi-crystalline films were observed upon complete melting, partial melting of the crystals, or by heating to temperatures close to Tm. Therefore, films of densely packed single crystals are suitable as barrier layers with thermally switchable degradation rates. Chemical modification in ultrathin films is an intricate process applicable to connect functionalized molecules, impart stability or create stimuli-sensitive cross-links. The reaction of end-groups is explored for transferred single crystals on a solid surface or amorphous monolayer at the air-water interface. Bulky methacrylate end-groups are expelled to the crystal surface during chain-folded crystallization. The density of end-groups is inversely proportional to molecular weight and hence very pronounced for oligomers. The methacrylate end-groups at the crystal surface, which are present at high concentration, can be used for further chemical functionalization. This is demonstrated by fluorescence microscopy after reaction with fluorescein dimethacrylate. The thermoswitching behavior (melting and recrystallization) of fluorescein functionalized single crystals shows the temperature-dependent distribution of the chemically linked fluorescein moieties, which are accumulated on the surfaces of crystals, and homogeneously dispersed when the crystals are molten. In amorphous monolayers at the air-water interface, reversible cross-linking of hydroxy-terminated oligo(ε-caprolactone) monolayers using dialdehyde (glyoxal) lead to the formation of 2D networks. Pronounced contraction in the area occurred for 2D OCL films in dependence of surface pressure and time indicating the reaction progress. Cross linking inhibited crystallization and retarded enzymatic degradation of the OCL film. Altering the subphase pH to ~2 led to cleavage of the covalent acetal cross-links. Besides as model systems, these reversibly cross-linked films are applicable for drug delivery systems or cell substrates modulating adhesion at biointerfaces.}, language = {en} } @phdthesis{Schutjajew2021, author = {Schutjajew, Konstantin}, title = {Electrochemical sodium storage in non-graphitizing carbons - insights into mechanisms and synthetic approaches towards high-energy density materials}, doi = {10.25932/publishup-54189}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-541894}, school = {Universit{\"a}t Potsdam}, pages = {v, 148}, year = {2021}, abstract = {To achieve a sustainable energy economy, it is necessary to turn back on the combustion of fossil fuels as a means of energy production and switch to renewable sources. However, their temporal availability does not match societal consumption needs, meaning that renewably generated energy must be stored in its main generation times and allocated during peak consumption periods. Electrochemical energy storage (EES) in general is well suited due to its infrastructural independence and scalability. The lithium ion battery (LIB) takes a special place, among EES systems due to its energy density and efficiency, but the scarcity and uneven geological occurrence of minerals and ores vital for many cell components, and hence the high and fluctuating costs will decelerate its further distribution. The sodium ion battery (SIB) is a promising successor to LIB technology, as the fundamental setup and cell chemistry is similar in the two systems. Yet, the most widespread negative electrode material in LIBs, graphite, cannot be used in SIBs, as it cannot store sufficient amounts of sodium at reasonable potentials. Hence, another carbon allotrope, non-graphitizing or hard carbon (HC) is used in SIBs. This material consists of turbostratically disordered, curved graphene layers, forming regions of graphitic stacking and zones of deviating layers, so-called internal or closed pores. The structural features of HC have a substantial impact of the charge-potential curve exhibited by the carbon when it is used as the negative electrode in an SIB. At defects and edges an adsorption-like mechanism of sodium storage is prevalent, causing a sloping voltage curve, ill-suited for the practical application in SIBs, whereas a constant voltage plateau of relatively high capacities is found immediately after the sloping region, which recent research attributed to the deposition of quasimetallic sodium into the closed pores of HC. Literature on the general mechanism of sodium storage in HCs and especially the role of the closed pore is abundant, but the influence of the pore geometry and chemical nature of the HC on the low-potential sodium deposition is yet in an early stage. Therefore, the scope of this thesis is to investigate these relationships using suitable synthetic and characterization methods. Materials of precisely known morphology, porosity, and chemical structure are prepared in clear distinction to commonly obtained ones and their impact on the sodium storage characteristics is observed. Electrochemical impedance spectroscopy in combination with distribution of relaxation times analysis is further established as a technique to study the sodium storage process, in addition to classical direct current techniques, and an equivalent circuit model is proposed to qualitatively describe the HC sodiation mechanism, based on the recorded data. The obtained knowledge is used to develop a method for the preparation of closed porous and non-porous materials from open porous ones, proving not only the necessity of closed pores for efficient sodium storage, but also providing a method for effective pore closure and hence the increase of the sodium storage capacity and efficiency of carbon materials. The insights obtained and methods developed within this work hence not only contribute to the better understanding of the sodium storage mechanism in carbon materials of SIBs, but can also serve as guidance for the design of efficient electrode materials.}, language = {en} } @phdthesis{Mazzanti2022, author = {Mazzanti, Stefano}, title = {Novel photocatalytic processes mediated by carbon nitride photocatalysis}, doi = {10.25932/publishup-54209}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-542099}, school = {Universit{\"a}t Potsdam}, pages = {418}, year = {2022}, abstract = {The key to reduce the energy required for specific transformations in a selective manner is the employment of a catalyst, a very small molecular platform that decides which type of energy to use. The field of photocatalysis exploits light energy to shape one type of molecules into others, more valuable and useful. However, many challenges arise in this field, for example, catalysts employed usually are based on metal derivatives, which abundance is limited, they cannot be recycled and are expensive. Therefore, carbon nitrides materials are used in this work to expand horizons in the field of photocatalysis. Carbon nitrides are organic materials, which can act as recyclable, cheap, non-toxic, heterogeneous photocatalysts. In this thesis, they have been exploited for the development of new catalytic methods, and shaped to develop new types of processes. Indeed, they enabled the creation of a new photocatalytic synthetic strategy, the dichloromethylation of enones by dichloromethyl radical generated in situ from chloroform, a novel route for the making of building blocks to be used for the productions of active pharmaceutical compounds. Then, the ductility of these materials allowed to shape carbon nitride into coating for lab vials, EPR capillaries, and a cell of a flow reactor showing the great potential of such flexible technology in photocatalysis. Afterwards, their ability to store charges has been exploited in the reduction of organic substrates under dark conditions, gaining new insights regarding multisite proton coupled electron transfer processes. Furthermore, the combination of carbon nitrides with flavins allowed the development of composite materials with improved photocatalytic activity in the CO2 photoreduction. Concluding, carbon nitrides are a versatile class of photoactive materials, which may help to unveil further scientific discoveries and to develop a more sustainable future.}, language = {en} } @phdthesis{Hechenbichler2021, author = {Hechenbichler, Michelle}, title = {New thermoresponsive amphiphilic block copolymers with unconventional chemical structure and architecture}, doi = {10.25932/publishup-54182}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-541822}, school = {Universit{\"a}t Potsdam}, pages = {XIX, 186}, year = {2021}, abstract = {Das Aggregationsverhalten von amphiphilen Blockcpoolymeren ist wichtig f{\"u}r zahlreiche Anwendungen, beispielsweise in der Waschmittelindustrie als Verdicker oder in der Pharmazie zur kontrollierten Freisetzung von Wirkstoffen. Wenn einer der Bl{\"o}cke thermoresponsiv ist, kann das Aggregationsverhalten zus{\"a}tzlich {\"u}ber die Temperatur gesteuert werden. W{\"a}hrend sich die bisherigen Untersuchungen solcher „intelligenten" Systeme zumeist auf einfache Diblockcopolymere beschr{\"a}nkt haben, wurde in der vorliegenden Arbeit die Komplexit{\"a}t der Polymere und damit die Vielseitigkeit dieser Systeme erh{\"o}ht. Dazu wurden spezifische Monomere, verschiedene Blockl{\"a}ngen, unterschiedliche Architekturen und zus{\"a}tzliche funktionelle Gruppen eingef{\"u}hrt. Durch systematische {\"A}nderungen wurde das Struktur-Wirkungsverhalten solcher thermoresponsiver amphiphiler Blockcopolymere untersucht. Dabei sind die Blockcopolymere typischerweise aus einem permanent hydrophoben „Sticker", einem permanent hydrophilen Block sowie einem thermoresponsiven Block, der ein Lower Critical Solution Temperature (LCST) Verhalten zeigt, aufgebaut. W{\"a}hrend der permanent hydrophile Block aus N,N Dimethylacrylamid (DMAm) bestand, wurden f{\"u}r den thermoresponsiven Block unterschiedliche Monomere, n{\"a}mlich N n Propylacrylamid (NPAm), N iso Propylacrylamid (NiPAm), N,N Diethylacrylamid (DEAm), N,N Bis(2 methoxyethyl)acrylamid (bMOEAm), oder N Acryloylpyrrolidin (NAP) mit entsprechend unterschiedlichen LCSTs von 25, 32, 33, 42 und 56 °C verwendet. Die Blockcopolymere wurden mittels aufeinanderfolgender reversibler Additions-Fragmentierungs-Ketten{\"u}bertragungspolymerisation (RAFT Polymerisation) hergestellt, um Polymere mit linearer, doppelt hydrophober sowie symmetrischer Quasi Miktoarm Architektur zu erhalten. Dabei wurden wohldefinierte Blockgr{\"o}ßen, Endgruppen und enge Molmassenverteilungen (Ɖ ≤ 1.3) erzielt. F{\"u}r komplexere Architekturen, wie die doppelt thermoresponsive und die nicht symmetrische Quasi Miktoarm Architekturen, wurde RAFT mit Atomtransfer-Radikalpolymerisation (ATRP) oder Single Unit Monomer Insertion (SUMI), kombiniert. Die dabei erhaltenen Blockcopolymere hatten ebenfalls wohldefinierte Blockl{\"a}ngen, allerdings war die Molmassenverteilung generell breiter (Ɖ ≤ 1.8) und Endgruppen gingen zum Teil verloren, da komplexere Syntheseschritte n{\"o}tig waren. Das thermoresponsive Verhalten in w{\"a}ssriger L{\"o}sung wurde mittels Tr{\"u}bungspunktmessung und Dynamischer Lichtstreuung (DLS) untersucht. Unterhalb der Phasen{\"u}berganstemperatur waren die Polymere l{\"o}slich in Wasser und mizellare Strukturen waren in der DLS sichtbar. Oberhalb der Phasen{\"u}bergangstemperatur war das Aggregationsverhalten dann stark abh{\"a}ngig von der Architektur und der chemischen Struktur des thermoresponsiven Blocks. Thermoresponsive Bl{\"o}cke aus PNAP und PbMOEAm mit einer Blockl{\"a}nge von DPn = 40 zeigten keinen Tr{\"u}bungspunkt (CP) bis hin zu 80 °C, da durch den angebrachten hydrophilen PDMAm Block die bereits hohe LCST der entsprechenden Homopolymere bei den Blockcopolymeren weiter erh{\"o}ht wurde. Blockcopolymere mit PNiPAm, PDEAm und PNPAm hinggeen zeigten abh{\"a}ngig von der Architektur und Blockgr{\"o}ße unterschiedliche CP's. Oberhalb der CP's waren gr{\"o}ßere Aggregate vor allem f{\"u}r die Blockcopolymere mit PNiPAm und PDEAm sichtbar, wohingegen der Phasen{\"u}bergang f{\"u}r Blockcopolymere mit PNPAm stark abh{\"a}ngig von der jeweiligen Architektur war und entsprechend kleinere oder gr{\"o}ßere Aggregate zeigte. Um das Aggregationsverhalten besser zu verstehen, wurden Fluoreszenzstudien an PDMAm und PNiPAm Homo und Blockcopolymeren mit linearer Architektur durchgef{\"u}hrt, welche mit komplement{\"a}ren Fluoreszenzfarbstoffen an den entgegengesetzten Kettenenden funktionalisiert wurden. Das thermoresponsive Verhalten wurde dabei sowohl in Wasser als auch in {\"O}l-in-Wasser Mikroemulsion untersucht. Die Ergebnisse zeigten, dass das Blockcopolymer sich, {\"a}hnlich wie die anderen hergestellten Architekturen, bei niedrigen Temperaturen wie ein Polymertensid verh{\"a}lt. Dabei bilden die hydrophoben Stickergruppen den Kern und die hydrophilen Arme die Corona der Mizelle. Oberhalb des Phasen{\"u}bergangs des PNiPAm Blocks verhielten sich die Blockcopolymere allerdings wie assoziative Telechele mit zwei nicht symmetrischen hydrophoben Endgruppen, die sich untereinander nicht mischten. Daher bildeten die Blockcopolymere anstatt aggregierter „Blumen"-Mizellen gr{\"o}ßere, dynamische Aggregate. Diese sind einerseits {\"u}ber die urspr{\"u}nglichen Mizellkerne bestehend aus den hydrophoben Sticker als auch {\"u}ber Cluster der kollabierten thermoresponsiven Bl{\"o}cke miteinander verkn{\"u}pft. In Mikroemulsion ist diese Art der Netzwerkbildung noch st{\"a}rker ausgepr{\"a}gt.}, language = {en} } @phdthesis{Lood2021, author = {Lood, Kajsa}, title = {Stereoselective Construction of C-C Double Bonds via Olefin Metathesis: From Tethered Reactions to Water-Soluble Catalysts for Stereoretentive Metathesis}, doi = {10.25932/publishup-53914}, url = {http://nbn-resolving.de/urn:nbn:de:kobv:517-opus4-539142}, school = {Universit{\"a}t Potsdam}, pages = {95}, year = {2021}, abstract = {Natural products have proved to be a major resource in the discovery and development of many pharmaceuticals that are in use today. There is a wide variety of biologically active natural products that contain conjugated polyenes or benzofuran structures. Therefore, new synthetic methods for the construction of such building blocks are of great interest to synthetic chemists. The recently developed one-pot tethered ring-closing metathesis approach allows for the formation of Z,E-dienoates in high stereoselectivity. The extension of this method with a Julia-Kocienski olefination protocol would allow for the formation of conjugated trienes in a stereoselective manner. This strategy was applied in the total synthesis of conjugated triene containing (+)-bretonin B. Additionally, investigations of cross metathesis using methyl substituted olefins were pursued. This methodology was applied, as a one-pot cross metathesis/ring-closing metathesis sequence, in the total synthesis of benzofuran containing 7-methoxywutaifuranal. Finally, the design and synthesis of a catalyst for stereoretentive metathesis in aqueous media was investigated.}, language = {en} }