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The subject of this thesis is the synthesis and characterization of PBI-based fluorescent metallosupramolecular polymers and cyclic arrays. Terpyridine receptor functionalized PBIs of predesigned geometry have been used as building blocks to construct desired macromolecular structures through metal-ion-directed self-assembly. These metallosupramolecular architectures have been investigated by NMR, UV/Vis and fluorescence spectroscopy, mass spectrometry, and atomic force microscopy.
The aim of this thesis was the preparation of a biomaterial ink for the fabrication of chemically crosslinked hydrogel scaffolds with low micron sized features using melt electrowriting (MEW). By developing a functional polymeric material based on 2-alkyl-2-oxazine (Ozi) and 2-alkyl-2-oxazoline (Ox) homo- and copolymers in combination with Diels-Alder (DA)-based dynamic covalent chemistry, it was possible to achieve this goal. This marks an important step for the additive manufacturing technique melt electrowriting (MEW), as soft and hydrophilic structures become available for the first time. The use of dynamic covalent chemistry is a very elegant and efficient method for consolidating covalent crosslinking with melt processing. It was shown that the high chemical versatility of the Ox and Ozi chemistry offers great potential to control the processing parameters. The established platform offers straight forward potential for modification with biological cues and fluorescent markers. This is essential for advanced biological applications. The physical properties of the material are readily controlled and the potential for 4D-printing was highlighted as well. The developed hydrogel architectures are excellent candidates for 3D cell culture applications. In particular, the low internal strength of some of the scaffolds in combination with the tendency of such constructs to collapse into thin strings could be interesting for the cultivation of muscle or nerve cells. In this context it was also possible to show that MEW printed hydrogel scaffolds can withstand the aspiration and ejection through a cannula. This allows the application as scaffolds for the minimally invasive delivery of implants or functional tissue equivalent structures to various locations in the human body.
The present work builds on a conjugated electrochromic polymer with a highly transmissive and colorless bright state and its application in electrochromic devices. The main body of this work focuses on the investigation of the influence of moisture on electrochromic devices and solutions to overcome possible degradation of these devices due to moisture ingress.
Firstly, a series of EDOT derivatives with a terminal double bond in the lateral sidechain to potentially achieve a highly transmissive and fully colorless bright state was investigated. All of the EDOT derivatives were electrochemically polymerized and characterized by means of (in-situ) spectroelectrochemistry. The results highlight the dramatic influence of the terminal double bond on the improved visible light transmittance and color neutrality in the bright state. After detailed evaluation and comparison, the best performing compound, which contains a hexenyl sidechain (PEDOT-EthC6), was scaled-up by changing the deposition technique from an electrochemical to a chemical in-situ polymerization process on a R2R-pilot line in an industrially relevant environment. The R2R-processed PEDOTEthC6 half-cells were characterized in detail and provide enhanced electrochromic properties in terms of visible light transmittance and color neutrality in the bright state as well as short response times, improved contrast ratio, coloration efficiency and cycling stability (10 000 cycles).[21]
In a second step, the novel PEDOT-EthC6 electrochromic polymer was combined with a Prussian Blue counter electrode and a solid polymer electrolyte to form an all-solid-sate ECDs based on complementary switching electrodes and PET-ITO as flexible substrates. The fabricated ECDs were optically and spectroelectrochemically characterized. Excellent functionality of the S2S-processed flexible ECDs was maintained throughout 10 000 switching cycles under laboratory conditions. The ECDs offer enhanced electrochromic properties in terms of visible light transmittance change and color neutrality in the bright state as well as contrast ratio, coloration efficiency, cycling stability and fast response times. Furthermore, the final device assembly was transferred from a S2S-process to a continuous R2R-lamination process.[238]
In a third step, the PEDOT-EthC6/PB-based ECDs were submitted to conscious environmental aging tests. The emphasis of the research presented in this work, was mainly put at the influence of moisture and possible failure mechanisms regarding the PEDOT-EthC6/PB based ECDs. An intense brown coloration of the electrodes was observed while cycling the ECDs in humid atmospheres (90% rH) as a major degradation phenomenon. The brown coloration and a thereby accompanied loss of conductivity of the PET-ITO substrates was related to significant degradation of the ITO layers, inserted as the conductive layers in the flexible ECDs. A dissolution of the ITO thin films and formation of metallic indium particles on the surface of the ITO layers was observed that harmed the cycling stability enormously. The conductive layers of the aged ECDs were investigated by XRD, UV-Vis, SEM and spectroelectrochemical measurements and validated the supposed irreversible reduction of the ITO layers.[279]
In the absence of reasonable alternatives to PET-ITO for flexible (R2R-processed) ECDs, it is also important to investigate measures to avoid the degradation of ECDs. This is primarily associated with the avoidance of appropriate electrode potentials necessary for ITO reduction in humid atmospheres. As an intrinsic action point, the electrode potentials were investigated via electrochemical measurements in a three-electrode setup of an all-solid-state ECD. Extensive knowledge on the electrode potentials allowed the voltage-induced degradation of the ITO in flexible ECDs to be avoided through the implementation of an unbalanced electrode configuration (charge density ratio of working and counter electrode). It was possible to narrow the overall operational voltage window to an extent in which irreversible ITO reduction no longer occurs. The unbalanced electrode configuration lead to an improved cycling stability without harming other characteristics such as response time and light transmittance change and allows ECD operation in the presence of humidity.[279]
The avoidance of the mentioned degradation phenomena is further associated with appropriate sealing methods and materials as well as appropriate electrode and device fabrication processes. Since a variety of sealing materials is commercially available, due to the commercial launch of organic photovoltaic (OPV) and light emitting diodes (OLEDs), the focus in the present work was put to water-free electrode fabrication. As an extrinsic action point, a novel preparation method of a nanoscale PEDOT-EthC6 dispersion based on organic solvents is presented here in a final step. The water-free processing method gives access to straightforward printing and coating processes on flexible PET-ITO substrates and thus represents a promising and simplified alternative to the established PEDOT:PSS. The resulting nano-PEDOT-EthC6 thin films exhibit enhanced color neutrality and transmissivity in the bright state and are comparable to the properties of the in-situ polymerized PEDOT-EthC6 thin films.[280]
Motivated by the great potential which is offered by the combination of additive manufacturing and tissue engineering, a novel polymeric bioink platform based on poly(2 oxazoline)s was developed which might help to further advance the young and upcoming field of biofabrication. In the present thesis, the synthesis as well as the characteristics of several diblock copolymers consisting of POx and POzi have been investigated with a special focus on their suitability as bioinks.
In general, the copolymerization of 2-oxazolines and 2-oxazines bearing different alkyl side chains was demonstrated to yield polymers in good agreement with the degree of polymerization aimed for and moderate to low dispersities.
For every diblock copolymer synthesized during the present study, a more or less pronounced dependency of the dynamic viscosity on temperature could be demonstrated. Diblock copolymers comprising a hydrophilic PMeOx block and a thermoresponsive PnPrOzi block showed temperature induced gelation above a degree of polymerization of 50 and a polymer concentration of 20 wt%. Such a behavior has never been described before for copolymers solely consisting of poly(cyclic imino ether)s.
Physically cross linked hydrogels based on POx b POzi copolymers exhibit reverse thermal gelation properties like described for solutions of PNiPAAm and Pluronic F127. However, by applying SANS, DLS, and SLS it could be demonstrated that the underlying gel formation mechanism is different for POx b POzi based hydrogels. It appears that polymersomes with low polydispersity are formed already at very low polymer concentrations of 6 mg/L. Increasing the polymer concentration resulted in the formation of a bicontinuous sponge like structure which might be formed due to the merger of several vesicles. For longer polymer chains a phase transition into a gyroid structure was postulated and corresponds well with the observed rheological data.
Stable hydrogels with an unusually high mechanical strength (G’ ~ 4 kPa) have been formed above TGel which could be adjusted over a range of 20 °C by changing the degree of polymerization if maintaining the symmetric polymer architecture. Variations of the chain ends revealed only a minor influence on TGel whereas the influence of the solvent should not be neglected as shown by a comparison of cell culture medium and MilliQ water.
Rotationally as well as oscillatory rheological measurements revealed a high suitability for printing as POx b POzi based hydrogels exhibit strong shear thinning behavior in combination with outstanding recovery properties after high shear stress.
Cell viability assays (WST-1) of PMeOx b PnPrOzi copolymers against NIH 3T3 fibroblasts and HaCat cells indicated that the polymers were well tolerated by the cells as no dose-dependent cytotoxicity could be observed after 24 h at non-gelling concentrations up to 100 g/L.
In summary, copolymers consisting of POx and POzi significantly increased the accessible range of properties of POx based materials. In particular thermogelation of aqueous solutions of diblock copolymers comprising PMeOx and PnPrOzi was never described before for any copolymer consisting solely of POx or POzi. In combination with other characteristics, e.g. very good cytocompatibility at high polymer concentrations and comparably high mechanical strength, the formed hydrogels could be successfully used for 3D bioprinting. Although the results appear promising and the developed hydrogel is a serious bioink candidate, competition is tough and it remains an open question which system or systems will be used in the future.
In this work, the trap states in the conjugated polymer P3HT, often used as electron donor in organic bulk heterojunction solar cells, three commonly used fullerene based electron acceptors and P3HT:PC61BM blends were investigated. Furthermore, the trap states in the blend were compared with these of the pure materials. Concerning the lifetime of organic solar cells the influence of oxygen on P3HT and P3HT:PC61BM blends was studied. The experimental techniques used to investigate the trap states in the organic semiconductors were (fractional) thermally stimulated current (TSC) and current based deep level transient spectroscopy (Q-DLTS). Fractional TSC measurements on P3HT diodes revealed a quasi-continuous trap distribution. The distribution suggested two different traps in P3HT with approximately Gaussian energy distributions and maxima at about 50 meV and 105 meV. Thereby, the former was attributed to the tail states within the regular Gaussian density of states due to the low activation energy. The latter, deeper traps, however, exhibited a strong dependence on oxygen. Exposure of the P3HT diodes to oxygen, ambient air and synthetic (dry) air all revealed an increase of the deeper traps density with exposure time in the same manner. While the lower limit of the trap density in non aged P3HT samples was in the range of (1.0 − 1.2)×10^22 m^−3, it was more than doubled after an exposure of 50 h to air. An increase of the trap density with oxygen exposure time was also seen in the Q-DLTS measurements accompanied with an increase of the temperature dependence of the emission rates, indicating an enhanced formation of deeper traps. Due to the raise in density of the deeper traps, the charge carrier mobility in P3HT significantly decreased, as revealed by photo-CELIV measurements, resulting in a loss in mobility of about two orders of magnitude after 100 h exposure to synthetic air. The increased trap density was attributed to p-doping of P3HT by the transfer of an electron to adsorbed oxygen. This effect was partially reversible by applying vacuum to the sample for several hours or, more significantly, by a thermal treatment of the devices in nitrogen atmosphere. The trap states in the methanofullerenes PC61BM, bisPC61BM and PC71BM were investigated by TSC measurements. PC61BM yielded a broad quasi-continuous trap distribution with the maximum of the distribution at about 75 meV. The comparison of the TSC spectra of the three methanofullerenes exhibited significant differences in the trap states with higher activation energies of the most prominent traps in bisPC61BM and PC71BM compared to PC61BM. This probably originates from the different isomers bisPC61BM and PC71BM consist of. Each of the isomers yields different LUMO energies, where the lower ones can act as traps. The lower limit of the trap density of all of the three investigated fullerene derivatives exhibited values in the order of 10^22 m^−3, with the highest for bisPC61BM and the lowest for PC61BM. By applying fractional TSC measurements on P3HT:PC61BM solar cells, it was shown that the trap distribution in the blend is a superposition of the traps in pure P3HT and PC61BM and additional deeper traps in the range of about 250 meV to 400 meV. The origin of these additional traps, which can not be related to the pure materials, was attributed to a higher disorder in the blend and P3HT/PC61BM interfaces. This conclusion was supported by standard TSC and Q-DLTS measurements performed on pristine and annealed P3HT:PC61BM blends, exhibiting a higher ratio of the deep traps in the pristine samples. The lower limit of the trap density of the investigated annealed solar cells was in the range of (6−8)×10^22 m^−3, which was considerably higher than in the pure materials. The influence of oxygen on P3HT:PC61BM solar cells was investigated by exposure of the devices to synthetic air under specific conditions. Exposure of the solar cells to oxygen in the dark resulted in a strong decrease in the power conversion efficiency of 60 % within 120 h, which was only caused by a loss in short-circuit current. Simultaneous illumination of the solar cells during oxygen exposure strongly accelerated the degradation, resulting in an efficiency loss of 30 % within only 3 h. Thereby, short-circuit current, open-circuit voltage and fill factor all decreased in the same manner. TSC measurements revealed an increase of the density of deeper traps for both degradation conditions, which resulted in a decrease of the mobility, as investigated by CELIV measurements. However, these effects were less pronounced than in pure P3HT. Furthermore, an increase of the equilibrium charge carrier density with degradation time was observed, which was attributed to oxygen doping of P3HT. With the aid of macroscopic simulations, it was shown that the doping of the solar cells is the origin of the loss in short-circuit current for both degradation conditions.
The present work aims towards the investigation of polymer degradation under biologically relevant conditions. In order to assess a potential degradation of polymers of interest for biomedical applications in vivo and associated effects on living tissue, representatives of poly(2-oxazoline)s and polypeptoids as well as poly(ethylene glycol) and poly(N-vinylpyrrolidone) for reference purposes are examined regarding their stability under oxidative and hydrolytic conditions as well as towards enzymatic degradation.
The polymers investigated in the framework of this thesis are generally considered to be non-biodegradable. Both poly(ethylene glycol) and poly(N-vinylpyrrolidone) are or were applied intensively in vivo provoking seriously harmful side effects like fatal blood poisoning from the oxidation of poly(ethylene glycol) chain ends or poly(N-vinylpyrrolidone) storage disease. Poly(2-alkyl-2-oxazoline)s and polypeptoids, both promising polymeric biomaterials for a wide variety of in vivo applications, are not clinically applied yet but undergo thorough investigations. However, comprising amide bonds within the backbone or the appending side chain, poly(2-alkyl-2-oxazoline)s and polypeptoids potentially offer a higher susceptibility towards (bio-)degradation. Representing the three most impactful initiators of degradation in vivo, the present study is focused on polymer deterioration by oxidative species, hydrolytic conditions and enzymes.
Oxidative species are generated in a variety of processes in vivo, both on purpose and as an unintentional by-product. Previous investigations revealed the susceptibility of poly(ethylene glycol), poly(N-vinylpyrrolidone), poly(2-alkyl-2-oxazoline)s and polypeptoids to deterioration by hydroxyl radicals deriving from hydrogen peroxide and copper ions. The obtained data confirm previous results of an apparent degradation rate increasing with increasing chain length due to self-inhibitory end group effects for all investigated polymer species. Although the exact concentrations of oxidative species in vivo are very controversial, with respect to their great variety and wide distribution the investigated polymers are likely prone to oxidative deterioration to some extent, with rates, mechanisms and degradation products strongly depending on the respective reactive species, polymer structure and chain length.
Like blood, most tissues of the human body benefit from a slightly alkaline pH value. Nevertheless, specific areas like the human stomach or tumor tissues possess acidic conditions potentially capable to cleave amide bonds comprised by poly(2-alkyl-2-oxazoline)s and polypeptoids. Unlike the hydrolysis of poly(2-alkyl-2-oxazoline)s resulting in side chain cleavage, the hydrolysis of polypeptoids induces backbone scission decreasing the polymer chain length tremendously and releasing, if performed exhaustively, the respective amino acids. Hydrolysis of polysarcosine is monitored by quantification of the released sarcosine via 1H-NMR spectroscopy and determination of the residual Mw via GPC. Its cyclic dimer sarcosine anhydride is formed as an intermediate product in this process via cyclization of unstable linear dimers of sarcosine.
Modification and degradation of bio(macro)molecules is an essential part of human metabolism. Polymers bearing amide bonds and showing a great similarity to natural occurring and widely distributed polypeptides, like poly(2-alkyl-2-oxazoline)s and polypeptoids, bear the potential of an enzymatic biodegradability by (more or less specific) peptidases. Just like the acidic hydrolysis described previously, peptidase activity would result in the cleavage of polymer amide bonds. The aim of the present thesis was to evaluate the stability of poly(2-alkyl-2-oxazoline)s and polypeptoids as well as poly(ethylene glycol) for the sake of reference under circumstances resembling in vivo conditions as closely as possible. Initial experiments focused on the degradation of dye-labeled upon incubation with homogenates of freshly harvested rat liver and kidney. However, although the obtained results are promising for the most part, they are considered rather unreliable and non-reproducible for various reasons. More conclusive data are attained from the incubation of non-labeled polymers in freshly laid chicken eggs. While no evidence for an enzymatic digestion of poly(ethylene glycol) in chicken egg white is found and deterioration of poly(2-methyl-2-oxazoline) upon incubation apparently derives from non-enzymatic hydrolysis, incubated polysarcosine samples reveal distinct elugram patterns depending on the respective C- and N-terminal end groups indicating both exopeptidase and endopeptidase activity. It has to be kept in mind though, that an enzymatic digestibility of polysarcosine does not necessarily imply the digestion of polypeptoids bearing longer side chains by peptidases as well, which should be investigated in further studies.
Im Rahmen der vorliegenden Arbeit wurde ein neuer Beschichtungstyp für die Elektrodenmaterialien von Lithium-Ionen-Akkumulatoren entwickelt und charakterisiert. Dieser besteht aus einem speziellen anorganisch-organischen Hybridpolymer, das sich bezüglich seiner Zusammensetzung und Funktion gegenüber bestehenden Beschichtungsmaterialien abhebt. Das anorganisch-organische Netzwerk des Hybridpolymers konnte mittels Feststoff-NMR-Messungen vollständig aufgeklärt werden. Dabei zeigte sich ein stabiles anorganisches Gerüst aus hoch vernetzten Polysiloxan-Einheiten. Zusätzliche organische Modifizierungen liegen als lange bewegliche Ketten mit funktionellen Polyethylenoxid-Einheiten vor oder sind in Form von Polyethern und Diolen vernetzt. Mit dieser speziellen Netzwerkstruktur ist es möglich, Materialeigenschaften zu erzeugen, die über solche von rein anorganischen und rein organischen Beschichtungen hinausgehen. Zu den mit verschiedenen Methoden nachgewiesenen Eigenschaften zählen eine hohe ionische Leitfähigkeit von 10\(^{-4}\) S/cm, eine hohe Elastizität mit E = 63 kPa, eine hohe elektrochemische Stabilität bis 5,0 V vs. Li/Li\(^+\) und eine hohe thermische Stabilität.
Eine weitere Besonderheit des neuen Beschichtungsmaterials ist die mehrstufige Vernetzung der anfänglichen Prekursoren zu einem Hybridpolymer-Sol und dem abschließenden Hybridpolymer-Gel. Die im Beschichtungssol vorliegende Teilvernetzung der Vorstufen konnte detailliert mittels Flüssig-NMR-Messungen untersucht und beschrieben werden. Aus den Messungen ließ sich folgern, dass die organisch und anorganisch vernetzbaren Gruppen im Sol teilweise vernetzt vorliegen. Die sterisch erreichbaren Si-OR-Gruppen der so entstandenen Oligomere sind vorwiegend nicht hydrolysiert, wodurch deren anorganische Anbindung an die OH-Gruppen der Partikeloberflächen kinetisch bevorzugt ist. Damit lassen sich besonders homogene und vollständig bedeckende Beschichtungen der Elektrodenmaterialien erzeugen. Dies konnte mit verschiedenen physikalischen und chemischen Methoden nachgewiesen werden: simulationsgestützte Rückstreuanalysen mittels REM, hochaufgelöste TEM-Aufnahmen sowie Elementanalysen durch EDX und XPS.
Nach der Optimierung des nasschemischen Beschichtungsprozesses über Rotationsverdampfen ergaben sich für die verschiedenen Elektrodenmaterialien Li\(_4\)Ti\(_5\)O\(_{12}\), Li(Ni,Co,Mn)O\(_2\) und Li(Mn,Ni)\(_2\)O\(_4\) jeweils etwa 20 nm dicke Beschichtungen mit Hybridpolymer. Die Frage nach deren Lösungsmittelbeständigkeit konnte durch die Analyse von behandelten Proben mit TG, REM, XPS und ICP-OES aufgeklärt werden. Dabei zeigte sich sowohl für die Behandlung mit NMP, dem klassischen Lösungsmittel bei der Elektrodenfertigung mit PVDF-Binder, als auch für die Behandlung mit dessen umweltschonenderem Ersatzstoff Aceton eine gute Beständigkeit der Beschichtung. Die Beschichtung löste sich in den Lösungsmitteln an, blieb allerdings als geschlossene nanoskalige Beschichtung erhalten. Lediglich gegenüber dem Lösungsmittel H\(_2\)O, das in Kombination mit dem neuen Binder CMC eingesetzt wird, wurde eine mangelnde Schichtstabilität deutlich. Das dafür verantwortliche Quellverhalten der Beschichtung konnte mittels Dünnschicht-Modellsystem und daran durchgeführten REM-, IR- und EPA-Untersuchungen aufgeklärt werden. Die Optimierung des Hybridpolymer-Materials bezüglich einer besseren H\(_2\)O-Beständigkeit übersteigt den Rahmen dieser Arbeit und liefert die Grundlage für weitere künftige Forschungsarbeiten.
Aufgrund der vollständigen Bedeckung der neuen Beschichtung, ihrer besonderen Eigenschaften und ihrer Beständigkeit bei der klassischen Elektrodenfertigung ist es möglich, die Elektrodenmaterialien grundlegend hinsichtlich ihrer wichtigsten Eigenschaften zu verbessern. Hierfür wurden sowohl über die NMP- als auch über die Aceton-Route Elektroden gefertigt und zu Halbzellen und Vollzellen verarbeitet. Die REM-Analyse der Elektroden zeigte, dass die Partikelbeschichtungen keinen negativen Einfluss auf die Homogenität und Morphologie der Elektroden ausüben. Damit war es möglich, jeweils einen direkten Vergleich von beschichteten und unbeschichteten Materialien hinsichtlich ihrer elektrochemischen Performance anzustellen. Für die Kathodenmaterialien Li(Ni,Co,Mn)O\(_2\) und Li(Mn,Ni)\(_2\)O\(_4\) ergaben die Zyklenfestigkeits- und Impedanzmessungen klare Verbesserungen durch die Beschichtung. Verbunden mit einer Verbesserung der Energiedichte erhöhte sich bei beiden Materialien die Zyklenfestigkeit um mehr als 60 %. Bei Li(Mn,Ni)\(_2\)O\(_4\) zeigt sich die Verbesserung in einer erhöhten Zellspannung durch das vergleichsweise hohe Redoxpotential des Materials von etwa 4,7 V vs. Li/Li\(^+\), während sich bei Li(Ni,Co,Mn)O\(_2\) die Hochvoltfähigkeit des Materials verbessert, was mit einer vergrößerten Speicherkapazität verbunden ist. Dabei ist herauszustellen, dass für keines der Materialien ein negativer Einfluss der dünnen Beschichtung auf die Leistungsdichte festgestellt werden konnte.
Der erwartete Mechanismus für die verbesserte Elektrodenfunktion durch das Hybridpolymer ist die Bildung einer physikalischen Schutzschicht in Form einer Li\(^+\)-leitfähigen Membran. Diese umgibt das Elektrodenmaterial vollständig, ermöglicht die Ladungsträgerinterkalation und schützt die Elektrode gleichzeitig vor irreversiblen Reaktionen mit dem Elektrolyten. Damit verbunden ist eine verminderte Mn-Auslösung und eine verminderte Entwicklung von isolierenden Deckschichten aus Reaktionsprodukten wie LiF, Li\(_2\)O, Li\(_2\)CO\(_3\), was sich positiv auf die Alterung der Batteriezellen auswirkt. Die Funktion der Beschichtung wurde primär auf den Kathodenmaterialien demonstriert. Doch auch auf der Anodenseite wurde ihre Anwendungstauglichkeit aufgezeigt, was das große Potential der Beschichtung für eine breite Anwendung in Lithium-Ionen-Batterien verdeutlicht.
This thesis concerned the design and examination of a scaffold for tissue engineering applications. The template for the presented scaffold came from nature itself: the intercellular space in tissues that provides structure and support to the cells of the respective tissue, known as extracellular matrix (ECM). Fibres are a predominant characteristic feature of ECM, providing adhesion sites for cell-matrix interactions. In this dissertation a fibrous mesh was generated using the electrospinning technique to mimic the fibrous structure of the ECM. Two base polymers were explored: a biodegradable polyester, poly(D,L-lactide-co-glycolide); and a functional PEG-based star polymer, NCO-sP(EO-stat-PO). This topic was described in three major parts: the first part was materials based, concerning the chemical design and characterisation of the polymer scaffolds; the focus was then shifted to the cellular response to this fibrous scaffold; and finally the in vivo performance of the material was preliminarily assessed. The first steps towards an electrospun mesh started with adjusting the spinning parameters for the generation of homogeneous fibres. As reported in Chapter 3 a suitable setup configuration was on the one hand comprised of a spinning solution that consisted of 28.5 w/v% PLGA RG 504 and 6 w/v% NCO-sP(EO-stat-PO) in 450 µL acetone, 50 µL DMSO and 10 µL of an aqueous trifluoroacetic acid solution. On the other hand an ideal spinning behaviour was achieved at process parameters such as a flow rate of 0.5 mL/h, spinneret to collector distance of 12-16 cm and a voltage of 13 kV. The NCO-sP(EO-stat-PO) containing fibres proved to be highly hydrophilic as the functional additive was present on the fibre surface. Furthermore, the fibres featured a bulk degradation pattern as a consequence of the proportion of PLGA. Besides the morphologic similarity to ECM fibres, the functionality of the electrospun fibres is also decisive for a successful ECM mimicry. In Chapter 4, the passive as well as active functionality of the fibres was investigated. The fibres were required to be protein repellent to prevent an unspecific cell adhesion. This was proven as even 6.5 % sP(EO-stat-PO) in the PLGA fibres reduced any unspecific protein adsorption of bovine serum albumin and foetal calf serum to less than 1 %. However, avidin based proteins attached to the fibres. This adhesion process was avoided by an additional fibre surface treatment with glycidol. The active functionalisation of NCO-sP(EO-stat-PO)/PLGA fibres was investigated with two fluorescent dyes and biocytin. A threefold, chemically orthogonal, fibre modification was achieved with these dyes. The chapters about the chemical and mechanical properties laid the basis for the in vitro chapters where a specific fibre functionalisation with peptides was conducted to analyse the cell adhesion and biochemical expressions. Beginning with fibroblasts in Chapter 5 the focus was on the specific cell adhesion on the electrospun fibres. While NCO-sP(EO-stat-PO)/PLGA fibres without peptides did not allow any adhesion of fibroblasts, a fibre modification with GRGDS (an adhesion mediating peptide sequence) induced the adhesion and spreading of human dermal fibroblasts on the fibrous scaffolds. The control sequence GRGES that has no adhesion mediating qualities did not lead to any cell adhesion as observed on fibres without modifications. While the experiments of Chapter 5 were a proof-of-concept, in Chapter 6 a possible application in cartilage tissue engineering was examined. Therefore, primary human chondrocytes were seeded on fibrous scaffolds with various peptide sequences. Though the chondrocytes exhibited high viability on all scaffolds, an active interaction of cells and fibres was only found for the decorin derived sequence CGKLER. Live-cell-imaging revealed both cell attachment and migration within CGKLER-modified meshes. As chondrocytes undergo a de-differentiation towards a fibroblast-like phenotype, the chondrogenic re-differentiation on these scaffolds was investigated in a long term cell culture experiment of 28 days. Therefore, the glycosaminoglycan production was analysed as well as the mRNA expression of genes coding for collagen I and II, aggrecan and proteoglycan 4. In general only low amounts of the chondrogenic markers were measured, suggesting no chondrogenic differentiation. For conclusive evidence follow-up experiments are required that support or reject the findings. The success of an implant for tissue engineering relies not only on the response of the targeted cell type but also on the immune reaction caused by leukocytes. Hence, Chapter 7 dealt with primary human macrophages and their behaviour and phenotype on two-dimensional (2D) surfaces compared to three-dimensional (3D) fibrous substrates. It was found that the general non-adhesiveness of NCO-sP(EO-stat-PO) surfaces and fibres does not apply to macrophages. The cells aligned along the fibres on surfaces or resided in the pores of the meshes. On flat surfaces without 3D structure the macrophages showed a retarded adhesion kinetic accompanied with a high migratory activity indicating their search for a topographical feature to adhere to. Moreover, a detailed investigation of cell surface markers and chemokine signalling revealed that macrophages on 2D surfaces exhibited surface markers indicating a healing phenotype while the chemokine release suggested a pro-inflammatory phenotype. Interestingly, the opposite situation was found on 3D fibrous substrates with pro-inflammatory surface markers and pro-angiogenic cytokine release. As the immune response largely depends on cellular communication, it was concluded that the NCO-sP(EO-stat-PO)/PLGA fibres induce an adequate immune response with promising prospects to be used in a scaffold for tissue engineering. The final chapter of this thesis reports on a first in vivo study conducted with the presented electrospun fibres. Here, the fibres were combined with a polypropylene mesh for the treatment of diaphragmatic hernias in a rabbit model. Two scaffold series were described that differed in the overall surface morphology: while the fibres of Series A were incorporated into a thick gel of NCO-sP(EO-stat-PO), the scaffolds of Series B featured only a thin hydrogel layer so that the overall fibrous structure could be retained. After four months in vivo the treated defects of the diaphragm were significantly smaller and filled mainly with scar tissue. Thick granulomas occurred on scaffolds of Series A while the implants of Series B did not induce any granuloma formation. As a consequence of the generally positive outcome of this study, the constructs were enhanced with a drug release system in a follow-up project. The incorporated drug was the MMP-inhibitor Ilomastat which is intended to reduce the formation of scar tissue. In conclusion, the simple and straight forward fabrication, the threefold functionalisation possibility and general versatile applicability makes the meshes of NCO-sP(EO-stat-PO)/PLGA fibres a promising candidate to be applied in tissue engineering scaffolds in the future.
In der vorliegenden Arbeit wurden Untersuchungen an Rückständen von thermisch abgebauten, flammgeschützten Polymeren vorgenommen, mit dem Ziel, die Struktur und den Phasenbestand der eingebauten Flammschutzmittel und der Polymere sowie deren Wechselwirkungen als Funktion der Temperatur und umgebenden Atmosphäre (N2 und Luft) zu charakterisieren. Ein wichtiges Werkzeug, das Informationen über den amorphen Zustand der Abbauprodukte und deren thermisch bedingte Phasenumwandlungen in andere amorphe oder kristalline Strukturen sowie Aussagen über die Nahordnungen der betrachteten Kernspinsorte liefert, stellt in dieser Arbeit der Einsatz der Festkörper-NMR-Spektroskopie dar. Hierbei sind neben Einzelimpuls- (SP), rotor-synchronisierte Spin-Echo- (RSE) und Kreuzpolarisationstechniken (CP) auch REDOR- (Rotational echo double resonance) und TRAPDOR- (Transfer of population in double resonance) Messungen zur Anwendung gekommen. Zusätzlich konnten aus den 11B- und 31P-NMR-Experimenten quantitative Aussagen über den relativen Borat- und Phosphor bzw. Phosphat-Anteil im festen Rückstand getroffen werden, wobei insbesondere für die 31P-Kerne eine quantitative Erfassung der kristallinen und amorphen Phosphatphasen durchgeführt wurde. Im ersten System wurden die Flammschutzmittel roter Phosphor (Prot) und Mg(OH)2 in HIPS kombiniert. Aus den Ergebnissen umfangreicher NMR-Experimente konnte abgeleitet werden, dass der größte Teil des eingesetzten Prot hauptsächlich in amorphen (Mg-Ortho-, -Di-, -Ketten- und Ringphosphaten) und weniger in kristallinen Phosphatphasen verbleibt. Zudem konnte für den Parameter der Temperatur und aus der Verfügbarkeit von Sauerstoff (N2-Atmosphäre/Luft) einen deutlicher Einfluss auf den Abbauprozess und die Bildung der Phosphatphasen (kristallin/amorph) nachgewiesen werden. Aus dem Vergleich der Ergebnisse der Temperversuche mit den Ergebnissen der Verbrennungsversuche im Cone Calorimeter konnte ein anaerober Abbauweg bestätigt werden. In einem zweiten System wurden die thermischen Reaktionen zwischen den Flammschutzadditiven BDP und Zinkborat sowie ihren Einfluss auf den thermischen Abbau eines PC/ABS-Blends untersucht. Der thermisch belastete Rückstand wird unabhängig von der Atmosphäre von amorphen Phosphatgruppen dominiert. Dabei konnten die während der Temperprozesse gebildeten Verbindungen α Zn3(PO4)2 und BPO4 als Folge einer Festphasenreaktion zwischen den eingesetzten Flammschutzadditiven identifiziert werden, wobei das α Zn3(PO4)2/BPO4 Verhältnis als Indikator für einen aeroben bzw. anaeroben Abbauprozess dient, der für die Feuerrückstände eindeutig einen anaeroben Abbau liefert.