Institut für Funktionsmaterialien und Biofabrikation
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- 2018 (9) (entfernen)
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- Polymere (2)
- 3D printing (1)
- Acoustics (1)
- Aluminiumnitrid (1)
- Bioabbaubarkeit (1)
- Biodegradability (1)
- Biologischer Abbau (1)
- Biomedical engineering (1)
- Brushite (1)
- DFT-LDA (1)
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Silk fibroin is commonly used as scaffold material for tissue engineering applications. In combination with a mineralization with different calcium phosphate phases, it can also be applied as material for bone regeneration. Here, we present a study which was performed to produce mineralized silk fibroin scaffolds with controlled macroporosity. In contrast to former studies, our approach focused on a simultaneous gelation and mineralization of silk fibroin by immersion of frozen silk fibroin monoliths in acidic calcium phosphate solutions. This was achieved by thawing frozen silk fibroin monoliths in acidic calcium phosphate solution, leading to the precipitation of monocalcium phosphate within the silk fibroin matrix. In the second approach, a conversion of incorporated -tricalcium phosphate particles into brushite was successfully achieved. Furthermore, a controlled cryostructuring process of silk fibroin scaffolds was carried out leading to the formation of parallel-oriented pores with diameters of 30-50 mu m.
Among external stimuli used to trigger release of a drug from a polymeric carrier, ultrasound has gained increasing attention due to its non-invasive nature, safety and low cost. Despite this attention, there is only limited knowledge about how materials available for the preparation of drug carriers respond to ultrasound. This study investigates the effect of ultrasound on the release of a hydrophobic drug, dexamethasone, from poly(2-oxazoline)-based micelles. Spontaneous and ultrasound-mediated release of dexamethasone from five types of micelles made of poly(2-oxazoline) block copolymers, composed of hydrophilic poly(2-methyl-2-oxazoline) and hydrophobic poly(2-n-propyl-2-oxazoline) or poly(2-butyl-2-oxazoline-co-2-(3-butenyl)-2-oxazoline), was studied. The release profiles were fitted by zeroorder and Ritger-Peppas models. The ultrasound increased the amount of released dexamethasone by 6% to 105% depending on the type of copolymer, the amount of loaded dexamethasone, and the stimulation time point. This study investigates for the first time the interaction between different poly(2-oxazoline)-based micelle formulations and ultrasound waves, quantifying the efficacy of such stimulation in modulating dexamethasone release from these nanocarriers.
DLTPulseGenerator: a library for the simulation of lifetime spectra based on detector-output pulses
(2018)
The quantitative analysis of lifetime spectra relevant in both life and materials sciences presents one of the ill-posed inverse problems and, hence, leads to most stringent requirements on the hardware specifications and the analysis algorithms. Here we present DLTPulseGenerator, a library written in native C++ 11, which provides a simulation of lifetime spectra according to the measurement setup. The simulation is based on pairs of non-TTL detector output-pulses. Those pulses require the Constant Fraction Principle (CFD) for the determination of the exact timing signal and, thus, the calculation of the time difference i.e. the lifetime. To verify the functionality, simulation results were compared to experimentally obtained data using Positron Annihilation Lifetime Spectroscopy (PALS) on pure tin.
We present first principle calculations on formation and binding energies for Cu and Zn as solute atoms forming small clusters up to nine atoms in Al-Cu and Al-Zn alloys. We employ a density-functional approach implemented using projector-augmented waves and plane wave expansions. We find that some structures, in which Cu atoms are closely packed on {100}-planes, turn out to be extraordinary stable. We compare the results with existing numerical or experimental data when possible. We find that Cu atoms precipitating in the form of two-dimensional platelets on {100}-planes in the fcc aluminum are more stable than three-dimensional structures consisting of the same number of Cu-atoms. The preference turns out to be opposite for Zn in Al. Both observations are in agreement with experimental observations.
Die Terahertz-Technologie erschließt permanent neue Forschungsbereiche und wird auch vermehrt im kommerziellen Bereich eingesetzt. Diese Entwicklung wird in eigenen Analysen dargestellt. Als Kernaspekte dieses Buchs werden technologische Verbesserungen für gepulste Terahertz-Systeme und der spektroskopische Einsatz für die Polymeranalytik vorgestellt. Einen besonderen Stellenwert nehmen dabei Untersuchungen an Polymermischungen im Schmelzezustand während der Prozessierung ein. Bemerkenswert ist hierbei das temperaturabhängige Verhalten von verschiedensten Polyamiden. Die Änderung der optischen und spektroskopischen Eigenschaften und die Einflussfaktoren werden tiefergehend betrachtet. Dabei werden verschiedene klassische und neuere Experimentalmethoden, Modellierungen und quantenchemische Simulationsmethoden eingesetzt, um insbesondere die intermolekularen Wechselwirkungen aufzuklären.
In order to mimic the extracellular matrix for tissue engineering, recent research approaches often involve 3D printing or electrospinning of fibres to scaffolds as cell carrier material. Within this thesis, a micron fibre printing process, called melt electrospinning writing (MEW), combining both additive manufacturing and electrospinning, has been investigated and improved. Thus, a unique device was developed for accurate process control and manufacturing of high quality constructs. Thereby, different studies could be conducted in order to understand the electrohydrodynamic printing behaviour of different medically relevant thermoplastics as well as to characterise the influence of MEW on the resulting scaffold performance.
For reproducible scaffold printing, a commonly occurring processing instability was investigated and defined as pulsing, or in extreme cases as long beading. Here, processing analysis could be performed with the aim to overcome those instabilities and prevent the resulting manufacturing issues. Two different biocompatible polymers were utilised for this study: poly(ε-caprolactone) (PCL) as the only material available for MEW until then and poly(2-ethyl-2-oxazoline) for the first time. A hypothesis including the dependency of pulsing regarding involved mass flows regulated by the feeding pressure and the electrical field strength could be presented. Further, a guide via fibre diameter quantification was established to assess and accomplish high quality printing of scaffolds for subsequent research tasks.
By following a combined approach including small sized spinnerets, small flow rates and high field strengths, PCL fibres with submicron-sized fibre diameters (fØ = 817 ± 165 nm) were deposited to defined scaffolds. The resulting material characteristics could be investigated regarding molecular orientation and morphological aspects. Thereby, an alignment and isotropic crystallinity was observed that can be attributed to the distinct acceleration of the solidifying jet in the electrical field and by the collector uptake. Resulting submicron fibres formed accurate but mechanically sensitive structures requiring further preparation for a suitable use in cell biology. To overcome this handling issue, a coating procedure, by using hydrophilic and cross-linkable star-shaped molecules for preparing fibre adhesive but cell repellent collector surfaces, was used.
Printing PCL fibre patterns below the critical translation speed (CTS) revealed the opportunity to manufacture sinusoidal shaped fibres analogously to those observed using purely viscous fluids falling on a moving belt. No significant influence of the high voltage field during MEW processing could be observed on the buckling phenomenon. A study on the sinusoidal geometry revealed increasing peak-to-peak values and decreasing wavelengths as a function of decreasing collector speeds sc between CTS > sc ≥ 2/3 CTS independent of feeding pressures. Resulting scaffolds printed at 100 %, 90 %, 80 % and 70 % of CTS exhibited significantly different tensile properties, foremost regarding Young’s moduli (E = 42 ± 7 MPa to 173 ± 22 MPa at 1 – 3 % strain). As known from literature, a changed morphology and mechanical environment can impact cell performance substantially leading to a new opportunity of tailoring TE scaffolds.
Further, poly(L-lactide-co-ε-caprolactone-co-acryloyl carbonate) as well as poly(ε-caprolactone-co-acryloyl carbonate) (PCLAC) copolymers could be used for MEW printing. Those exhibit the opportunity for UV-initiated radical cross-linking in a post-processing step leading to significantly increased mechanical characteristics. Here, single fibres of the polymer composed of 90 mol.% CL and 10 mol.% AC showed a considerable maximum tensile strength of σmax = 53 ± 16 MPa. Furthermore, sinusoidal meanders made of PCLAC yielded a specific tensile stress-strain characteristic mimicking the qualitative behaviour of tendons or ligaments. Cell viability by L929 murine fibroblasts and live/dead staining with human mesenchymal stem cells revealed a promising biomaterial behaviour pointing out MEW printed PCLAC scaffolds as promising choice for medical repair of load-bearing soft tissue.
Indeed, one apparent drawback, the small throughput similar to other AM methods, may still prevent MEW’s industrial application yet. However, ongoing research focusses on enlargement of manufacturing speed with the clear perspective of relevant improvement. Thereby, the utilisation of large spinneret sizes may enable printing of high volume rates, while downsizing the resulting fibre diameter via electrical field and mechanical stretching by the collector uptake. Using this approach, limitations of FDM by small nozzle sizes could be overcome. Thinking visionary, such printing devices could be placed in hospitals for patient-specific printing-on-demand therapies one day. Taking the evolved high deposition precision combined with the unique small fibre diameter sizes into account, technical processing of high performance membranes, filters or functional surface finishes also stands to reason.
Several transition metal ions, like Fe2+, Co2+, Ni2+, and Zn2+ complex to the ditopic ligand 1,4-bis(2,2’:6’,2’’-terpyridin-4’-yl)benzene. Due to the high association constant, metal ion induced self-assembly of Fe2+, Co2+, and Ni2+ leads to extended, rigid-rod like metallo-supramolecular coordination polyelectrolytes (MEPEs) even in aqueous solution. Here, the kinetics of coordination and the kinetics of growth of MEPEs are presented. The species in solutions are analyzed by stopped-flow fluorescence spectroscopy, light scattering, viscometry and cryogenic transmission electron microscopy. At near-stoichiometric amounts of the reactants, high molar masses are obtained, which follow the order Ni-MEPE ~ Co-MEPE < Fe-MEPE. Furthermore, a way is presented to adjust the average molar mass, chain-length and viscosity of MEPEs using the monotopic chain stopper 4’-(phenyl)-2,2’:6’,2’’-terpyridine.
Die experimentelle Verbesserung der makroskopischen Eigenschaften (z. B. thermische oder mechanische Eigenschaften) von Keramiken ist aufgrund der zahlreichen erforderlichen Experimente zeitaufwändig und kostenintensiv. Simulationen hingegen können die Korrelation von Mikrostruktur und makroskopischen Eigenschaften nutzen, um die Eigenschaften von beliebigen Gefügekompositionen zu berechnen. In bisherigen Simulationen wurden meist stark vereinfachte Modelle herangezogen, welche die Mikrostruktur einer Keramik nur sehr grob widerspiegeln und deshalb keine zuverlässigen Ergebnisse liefern.
In der vorliegenden Arbeit wird die Mikrostruktur-Eigenschafts-Korrelation der drei wichtigsten Nicht-Oxid-Keramiken untersucht. Dies sind Aluminiumnitrid (AlN), Siliciumnitrid (Si3N4) und Siliciumcarbid (SiC). Diese drei Keramiktypen vertreten die häufigsten Mikrostrukturtypen, welche bei Nicht-Oxid-Keramiken auftreten können. Zu jedem Keramiktyp liegen zwei verschiedene Proben vor.
Alle drei untersuchten Keramiktypen sind zweiphasig. Die Hauptphase von AlN und Si3N4 besteht aus keramischen Körnern, die Nebenphase erstarrt während der Sinterung aus den zugesetzten Sinteradditiven. Die Restporosität von AlN und Si3N4 wird als vernachlässigbar angesehen und in den Simulationen nicht berücksichtigt. Bei den SiC-Proben handelt es sich um Keramiken mit bimodaler Korngröÿenverteilung. Durch Infiltration mit flüssigem Silicium wurden die Hohlräume zwischen den Körnern aufgefüllt, um porenfreie SiSiC-Proben zu erhalten.
Anhand von Simulationen werden zunächst reale Mikrostrukturen in Anlehnung an vorliegende Vergleichsproben nachgebildet. Diese Modelle werden durch Abgleich mit rasterelektronenmikroskopischen 2D-Aufnahmen der Proben verifiziert. An den Modellen werden mit der Methode der Finite-Element-Simulation makroskopische Eigenschaften (Wärmeleitfähigkeit, Elastizitätsmodul und Poisson-Zahl) der Keramiken simuliert und mit experimentellen Messungen an den vorliegenden Proben abgeglichen.
Der Vergleich der Mikrostruktur von den computergenerierten Gefügen und den vorliegenden Proben zeigt in der Mustererkennung durch das menschliche Auge und quantitativ in den Gefügeparametern eine gute Übereinstimmung. Für die makroskopischen Eigenschaften wird auf der Basis einer ausführlichen Literaturrecherche zu den Materialparametern der beteiligten Phasen eine gute Übereinstimmung zwischen den experimentell gemessenen und den simulierten Eigenschaften erreicht. Evtl. auftretende Abweichungen zwischen Experiment und Simulation können damit erklärt werden, dass die Proben Verunreinigungen enthalten, da aus der Literatur bekannt ist, dass Verunreinigungen eine Verschlechterung der Wärmeleitfähigkeit bewirken.
Nachdem die Gültigkeit der Modelle verifiziert ist, wird der Einfluss von charakteristischen
Mikrostrukturparametern und Phaseneigenschaften auf die Wärmeleitfähigkeit, den Elastizitätsmodul und die Poisson-Zahl der Keramiken untersucht. Hierzu werden die Mikrostrukturparameter von AlN und Si3N4 gezielt um die Parameter der vorliegenden Vergleichsproben variiert. Bei beiden Keramiktypen werden die Volumenanteile der beteiligten Phasen sowie die mittlere Sehnenlänge der keramischen Körner verändert. Bei den AlN-Keramiken wird zusätzlich der Dihedralwinkel variiert, welcher Auskunft über den Benetzungsgrad der Flüssigphase gibt; bei den Si3N4-Keramiken ist das Achsenverhältnis der langgezogenen Si3N4-Körner von Interesse und wird deshalb ebenfalls variiert. Es zeigt sich, dass die Aufteilung der Teilvolumina zwischen den zwei Phasen den größten Einfluss auf die Eigenschaften der Keramik hat, während die übrigen Mikrostrukturparameter nur eine untergeordnete Rolle spielen.
Um die Qualität der Simulationen zu überprüfen, wird die Simulationsreihe an AlN mit unterschiedlicher Aufteilung der Volumina zwischen den beiden Phasen in Relation zu etablierten Modellen aus der Literatur (Mischungsregel und Modell nach Ondracek) gesetzt. Alle Simulationsergebnisse für die Wärmeleitfähigkeit und den Elastizitätsmodul liegen innerhalb der jeweils oberen und unteren Grenze beider Modelle. Es konnte also eine Verbesserung gegenüber den etablierten Modellen erzielt werden.
An allen drei Keramiktypen wird der Einfluss der Materialeigenschaften der Haupt- und Nebenphase auf die makroskopischen Eigenschaften der Keramik untersucht. Hierfür werden die Wärmeleitfähigkeit, der Elastizitätsmodul und die Poisson-Zahl der Phasen getrennt voneinander über einen größeren Bereich variiert. Es stellt sich heraus, dass es vom Keramiktyp und dem Volumenanteil der Nebenphase abhängt, wie stark der Einfluss einer Komponenteneigenschaft auf die Eigenschaft der Keramik ist.
Mit den im Rahmen dieser Arbeit durchgeführten Simulationen wird der Einfluss von Mikrostrukturparametern und Phaseneigenschaften berechnet. Auf der Grundlage dieser Simulationen können die Architektur des Gefüges simuliert und die Eigenschaften von Keramiken für individuelle Anwendungen berechnet werden. Dies ist die Basis für die Produktion von maßgeschneiderten Keramiken. Zudem können mit den validierten Mikrostrukturmodellen die Eigenschaften von unbekannten Mischphasen ermittelt werden, was experimentell oft nicht möglich ist.
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.