4 resultados para Experiments with Change
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Computer simulations have become an important tool in physics. Especially systems in the solid state have been investigated extensively with the help of modern computational methods. This thesis focuses on the simulation of hydrogen-bonded systems, using quantum chemical methods combined with molecular dynamics (MD) simulations. MD simulations are carried out for investigating the energetics and structure of a system under conditions that include physical parameters such as temperature and pressure. Ab initio quantum chemical methods have proven to be capable of predicting spectroscopic quantities. The combination of these two features still represents a methodological challenge. Furthermore, conventional MD simulations consider the nuclei as classical particles. Not only motional effects, but also the quantum nature of the nuclei are expected to influence the properties of a molecular system. This work aims at a more realistic description of properties that are accessible via NMR experiments. With the help of the path integral formalism the quantum nature of the nuclei has been incorporated and its influence on the NMR parameters explored. The effect on both the NMR chemical shift and the Nuclear Quadrupole Coupling Constants (NQCC) is presented for intra- and intermolecular hydrogen bonds. The second part of this thesis presents the computation of electric field gradients within the Gaussian and Augmented Plane Waves (GAPW) framework, that allows for all-electron calculations in periodic systems. This recent development improves the accuracy of many calculations compared to the pseudopotential approximation, which treats the core electrons as part of an effective potential. In combination with MD simulations of water, the NMR longitudinal relaxation times for 17O and 2H have been obtained. The results show a considerable agreement with the experiment. Finally, an implementation of the calculation of the stress tensor into the quantum chemical program suite CP2K is presented. This enables MD simulations under constant pressure conditions, which is demonstrated with a series of liquid water simulations, that sheds light on the influence of the exchange-correlation functional used on the density of the simulated liquid.
Resumo:
Within this work, a particle-polymer surface system is studied with respect to the particle-surface interactions. The latter are governed by micromechanics and are an important aspect for a wide range of industrial applications. Here, a new methodology is developed for understanding the adhesion process and measure the relevant forces, based on the quartz crystal microbalance, QCM. rnThe potential of the QCM technique for studying particle-surface interactions and reflect the adhesion process is evaluated by carrying out experiments with a custom-made setup, consisting of the QCM with a 160 nm thick film of polystyrene (PS) spin-coated onto the quartz and of glass particles, of different diameters (5-20µm), deposited onto the polymer surface. Shifts in the QCM resonance frequency are monitored as a function of the oscillation amplitude. The induced frequency shifts of the 3rd overtone are found to decrease or increase, depending on the particle-surface coupling type and the applied oscillation (frequency and amplitude). For strong coupling the 3rd harmonic decreased, corresponding to an “added mass” on the quartz surface. However, positive frequency shifts are observed in some cases and are attributed to weak-coupling between particle and surface. Higher overtones, i.e. the 5th and 7th, were utilized in order to derive additional information about the interactions taking place. For small particles, the shift for specific overtones can increase after annealing, while for large particle diameters annealing causes a negative frequency shift. The lower overtones correspond to a generally strong-coupling regime with mainly negative frequency shifts observed, while the 7th appears to be sensitive to the contact break-down and the recorded shifts are positive.rnDuring oscillation, the motion of the particles and the induced frequency shift of the QCM are governed by a balance between inertial forces and contact forces. The adherence of the particles can be increased by annealing the PS film at 150°C, which led to the formation of a PS meniscus. For the interpretation, the Hertz, Johnson-Kendall-Roberts, Derjaguin-Müller-Toporov and the Mindlin theory of partial slip are considered. The Mindlin approach is utilized to describe partial slip. When partial slip takes place induced by an oscillating load, a part of the contact ruptures. This results in a decrease of the effective contact stiffness. Additionally, there are long-term memory effects due to the consolidation which along with the QCM vibrations induce a coupling increase. However, the latter can also break the contact, lead to detachment and even surface damage and deformation due to inertia. For strong coupling the particles appear to move with the vibrations and simply act as added effective mass leading to a decrease of the resonance frequency, in agreement with the Sauerbrey equation that is commonly used to calculate the added mass on a QCM). When the system enters the weak-coupling regime the particles are not able to follow the fast movement of the QCM surface. Hence, they effectively act as adding a “spring” with an additional coupling constant and increase the resonance frequency. The frequency shift, however, is not a unique function of the coupling constant. Furthermore, the critical oscillation amplitude is determined, above which particle detach. No movement is detected at much lower amplitudes, while for intermediate values, lateral particle displacement is observed. rnIn order to validate the QCM results and study the particle effects on the surface, atomic force microscopy, AFM, is additionally utilized, to image surfaces and measure surface forces. By studying the surface of the polymer film after excitation and particle removal, AFM imaging helped in detecting three different meniscus types for the contact area: the “full contact”, the “asymmetrical” and a third one including a “homocentric smaller meniscus”. The different meniscus forms result in varying bond intensity between particles and polymer film, which could explain the deviation between number of particles per surface area measured by imaging and the values provided by the QCM - frequency shift analysis. The asymmetric and the homocentric contact types are suggested to be responsible for the positive frequency shifts observed for all three measured overtones, i.e. for the weak-coupling regime, while the “full contact” type resulted in a negative frequency shift, by effectively contributing to the mass increase of the quartz..rnThe interplay between inertia and contact forces for the particle-surface system leads to strong- or weak-coupling, with the particle affecting in three mentioned ways the polymer surface. This is manifested in the frequency shifts of the QCM system harmonics which are used to differentiate between the two interaction types and reflect the overall state of adhesion for particles of different size.rn
Resumo:
In dieser Arbeit wurde zunächst ein humanisiertes Mausmodell entwickelt für die Analyse von humanen DCs in vivo. Darüber hinaus wurden erste Versuche mit Nanopartikelbeladenen DCs durchgeführt, mit der Intention, durch diese Kombination humane DCs zu untersuchen. Es wurden immunsupprimierte NOD/LtSz-scid IL2R (NSG) Mäuse verwendet und mit humanen CD34+ PBSCs transplantiert. Es wurden insgesamt 14 Modelle getestet, mit einer durchschnittlichen Humanisierungsrate von 76 %. In allen Modellen konnten ab Woche sechs nach Transplantation humane CD45+ Zellen sowie humane Bund NK-Zellen und CD14+ Monozyten gefunden werden. Darüber hinaus waren myeloide DC-Vorläuferzellen, konventionelle HLA DR CD11c DCs (cDCs) und plasmazytoide DCs (pDCs) vorhanden. Humane T-Zellen konnten nicht vor Woche 18 nach Transplantation beobachtet werden. Neben der Rekonstitution humaner DCs in peripheren Organen, wurde ebenfalls nach gewebsständigen DCs, insbesondere den Langerhans Zellen (LCs) der Epidermis geschaut. Waren humane LC vorhanden, konnten diese ab Woche zwölf nach Transplantation in der murinen Epidermis detektiert werden. Diese waren konstant bis in Woche 30 nach Transplantation nachweisbar. In Hinblick auf die Etablierung der DCs in diesem humanisierten Mausmodells wurden verschiedene Einflussgrößen getestet. IL-7 führte zu keiner veränderten Hämatopoese, wohingegen Flt3L zu einer Zunahme von CD14+ Monozyten und cDCs führte. Darüber hinaus konnte eine drastische Abnahmernhumaner B-Zellen beobachtet werden. Es zeigte sich, dass der Zeitpunkt der Flt3LrnApplikation einen entscheidenen Faktor für den Effekt von Flt3L auf die Rekonstitution humaner Zellen darstellt. Für die in dieser Arbeit durchgeführten funktionellen in vivo Studien, wurden humanisierten Mäusen alloreaktive CD8+ T-Zellen appliziert. Somit sollte die Funktionalität der rekonstituierten humanen APCs getestet werden. Es wurde deutlich, dass Monozyten und DCs ihre Funktionalität erst ab Woche 14 nach Transplantation zu entwickeln schienen,rnwohingegen B-Zellen bereits zu früheren Zeitpunkten als Zielzellen für die alloreaktiven T-Zellen dienten. Dies wurde durch den Rückgang der jeweiligen Zellen nach Applikation der T-Zellen sichtbar. Zu erwähnen ist, dass das Anwachsen einer humanen Hämatopoese stark spenderabhängig ist und somit keine allgemeingültigen Aussagen hinsichtlich der in vivo Funktion getroffen werden können. Um im Gewebe verbliebende APCs zu manipulieren gibt es verschiedene Möglichkeiten. Im Rahmen dieser Arbeit wurden auf Polystyren-basierende Nanopartikel getestet. Die verwendeten Partikel hatten eine Größe von 80 bis 160 nm und waren unfunktionalisiert oder mit Amino- bzw. Carboxy-Gruppen versehen. Zusätzlich wurden die Partikel mit BODIPY (Durchflusszytometrie und kLSM-Messungen), einem Infrarotnahem Farbstoff IR 780 (BFI-Messungen) und Platin (in vivo Messungen) beladen. Der Carboxy-funktionalisierte Partikel zeigte den geringsten Einfluss auf die Vitalität von humanen DCs, wohingegen der Amino-funktionalisierte Partikel bei steigender Konzentration toxisch wirkte. Bei unfunktionalisierten Partikeln stieg die Toxizität bei zunehmender Konzentration. Hinsichtlich der Expression diverser DC spezifischer Oberflächenmoleküle nach Beladung mit Nanopartikeln zeigte sich, dass allein der unfunktionalisierte, mit Lutensol AT50 hergestellte Partikel zu einer leichten Hochregulation von MHC-Klasse-II Molekülen führte. Die Expression von CD86 wurde im Gegenzug nur durch die Beladung mit den Amino-, bzw. Carboxy funktionalisierten Partikeln und dem unfunktionalisierten, mit SDS hergestellten Partikel leicht gesteigert. Trotz der teilweise leicht veränderten Expression von Oberflächenmarkern, konnte mit Hilfe von IFN-g ELISpots keine Beeinflussungrnder Funktion als APCs von Nanopartikel-beladenen DCs beobachtet werden. In den in vivo Untersuchungen zeigten alle vier Partikel eine konstante Zirkulation imrnOrganismus und konnten bis 96 h nach Applikation nachgewiesen werden. Alle Partikel konnten primär in der Leber detektiert werden, wobei der unfunktionalisierte, mit Lutensol AT50 hergestelle Partikel das weiteste Verbreitungsmuster zeigte. Erste Versuche im humanisierten Mausmodell zeigten keine Beeinflussung der Verteilung und Kinetik von Nanopartikeln durch die humane Hämatopoese. Mit dem in dieser Arbeit etablierten humanisierten Mausmodell ist es möglich, die Entwicklung, Differenzierung, Aktivierung und Funktionalität humaner DCs in vivo zu untersuchen. Darüber hinaus kann das gezielte Adressieren von DCs in vivo analysiert werden, was sowohl die Möglichkeit der Manipulation von DCs zur Vermeidung einer akuten GvHD bietet als auch Verwendung in anderen DC-vermittelten Therapien (z.B.Vakzinationsstudien) findet.
Resumo:
Efficient coupling of light to quantum emitters, such as atoms, molecules or quantum dots, is one of the great challenges in current research. The interaction can be strongly enhanced by coupling the emitter to the eva-nescent field of subwavelength dielectric waveguides that offer strong lateral confinement of the guided light. In this context subwavelength diameter optical nanofibers as part of a tapered optical fiber (TOF) have proven to be powerful tool which also provide an efficient transfer of the light from the interaction region to an optical bus, that is to say, from the nanofiber to an optical fiber. rnAnother approach towards enhancing light–matter interaction is to employ an optical resonator in which the light is circulating and thus passes the emitters many times. Here, both approaches are combined by experi-mentally realizing a microresonator with an integrated nanofiber waist. This is achieved by building a fiber-integrated Fabry-Pérot type resonator from two fiber Bragg grating mirrors with a stop-band near the cesium D2-line wavelength. The characteristics of this resonator fulfill the requirements of nonlinear optics, optical sensing, and cavity quantum electrodynamics in the strong-coupling regime. Together with its advantageous features, such as a constant high coupling strength over a large volume, tunability, high transmission outside the mirror stop band, and a monolithic design, this resonator is a promising tool for experiments with nanofiber-coupled atomic ensembles in the strong-coupling regime. rnThe resonator's high sensitivity to the optical properties of the nanofiber provides a probe for changes of phys-ical parameters that affect the guided optical mode, e.g., the temperature via the thermo-optic effect of silica. Utilizing this detection scheme, the thermalization dynamics due to far-field heat radiation of a nanofiber is studied over a large temperature range. This investigation provides, for the first time, a measurement of the total radiated power of an object with a diameter smaller than all absorption lengths in the thermal spectrum at the level of a single object of deterministic shape and material. The results show excellent agreement with an ab initio thermodynamic model that considers heat radiation as a volumetric effect and that takes the emitter shape and size relative to the emission wavelength into account. Modeling and investigating the thermalization of microscopic objects with arbitrary shape from first principles is of fundamental interest and has important applications, such as heat management in nano-devices or radiative forcing of aerosols in Earth's climate system. rnUsing a similar method, the effect of the TOF's mechanical modes on the polarization and phase of the fiber-guided light is studied. The measurement results show that in typical TOFs these quantities exhibit high-frequency thermal fluctuations. They originate from high-Q torsional oscillations that couple to the nanofiber-guided light via the strain-optic effect. An ab-initio opto-mechanical model of the TOF is developed that provides an accurate quantitative prediction for the mode spectrum and the mechanically induced polarization and phase fluctuations. These high-frequency fluctuations may limit the ultimate ideality of fiber-coupling into photonic structures. Furthermore, first estimations show that they may currently limit the storage time of nanofiber-based atom traps. The model, on the other hand, provides a method to design TOFs with tailored mechanical properties in order to meet experimental requirements. rn