884 resultados para CORE-SHELL PHOSPHOR


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Further advances in magnetic hyperthermia might be limited by biological constraints, such as using sufficiently low frequencies and low field amplitudes to inhibit harmful eddy currents inside the patient's body. These incite the need to optimize the heating efficiency of the nanoparticles, referred to as the specific absorption rate (SAR). Among the several properties currently under research, one of particular importance is the transition from the linear to the non-linear regime that takes place as the field amplitude is increased, an aspect where the magnetic anisotropy is expected to play a fundamental role. In this paper we investigate the heating properties of cobalt ferrite and maghemite nanoparticles under the influence of a 500 kHz sinusoidal magnetic field with varying amplitude, up to 134 Oe. The particles were characterized by TEM, XRD, FMR and VSM, from which most relevant morphological, structural and magnetic properties were inferred. Both materials have similar size distributions and saturation magnetization, but strikingly different magnetic anisotropies. From magnetic hyperthermia experiments we found that, while at low fields maghemite is the best nanomaterial for hyperthermia applications, above a critical field, close to the transition from the linear to the non-linear regime, cobalt ferrite becomes more efficient. The results were also analyzed with respect to the energy conversion efficiency and compared with dynamic hysteresis simulations. Additional analysis with nickel, zinc and copper-ferrite nanoparticles of similar sizes confirmed the importance of the magnetic anisotropy and the damping factor. Further, the analysis of the characterization parameters suggested core-shell nanostructures, probably due to a surface passivation process during the nanoparticle synthesis. Finally, we discussed the effect of particle-particle interactions and its consequences, in particular regarding discrepancies between estimated parameters and expected theoretical predictions. Copyright 2012 Author(s). This article is distributed under a Creative Commons Attribution 3.0 Unported License. [http://dx.doi. org/10.1063/1.4739533]

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This paper reports on the synthesis (chemical co-precipitation reaction) and characterization (X-ray diffraction, magnetization, and electron paramagnetic resonance) of nanosized Cd1-xMnxS particles with manganese concentration up to x = 0.73. Though the literature reports that nanosized (bulk) CdS can incorporate as much as 30% (50%) of manganese ion within its crystal structure we found manganese segregation at the nanoparticle surface at doping levels as low as 14%. We found that both XRD and magnetization data support the presence of the Mn3O4 phase (observed spin-glass transition around 43 K) at the high manganese doping levels whereas the EPR data strongly suggest preferential incorporation of manganese at the nanoparticle's surface, even at low manganese doping levels. Analyses of the experimental data strongly suggest the preparation of well-defined core/shell (Cd1-xMnxS/Mn3O4) structures at higher levels of manganese doping.

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Structural and electronic properties of the PtnTM55-n (TM = Co, Rh, Au) nanoalloys are investigated using density functional theory within the generalized gradient approximation and employing the all-electron projected augmented wave method. For TM = Co and Rh, the excess energy, which measures the relative energy stability of the nanoalloys, is negative for all Pt compositions. We found that the excess energy has similar values for a wide range of Pt compositions, i.e., n = 20-42 and n = 28-42 for Co and Rh, respectively, with the core shell icosahedron-like configuration (n = 42) being slightly more stable for both Co and Rh systems because of the larger release of the strain energy due to the smaller atomic size of the Co and Rh atoms. For TM = Au, the excess energy is positive for all compositions, except for n = 13, which is energetically favorable due to the formation of the core-shell structure (Pt in the core and Au atoms at the surface). Thus, our calculations confirm that the formation of core-shell structures plays an important role to increase the stability of nanoalloys. The center of gravity of the occupied d-states changes almost linearly as a function of the Pt composition, and hence, based on the d-band model, the magnitude of the adsorption energy of an adsorbate can be tuned by changing the Pt composition. The magnetic moments of PtnCo55-n decrease almost linearly as a function of the Pt composition; however, the same does not hold for PtRh and PtAu. We found an enhancement of the magnetic moments of PtRh by a few times by increasing Pt composition, which we explain by the compression effects induced by the large size of the Pt atoms compared with the Rh atoms.

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Objects with complex shape and functions have always attracted attention and interest. The morphological diversity and complexity of naturally occurring forms and patterns have been a motivation for humans to copy and adopt ideas from Nature to achieve functional, aesthetic and social value. Biomimetics is addressed to the design and development of new synthetic materials using strategies adopted by living organisms to produce biological materials. In particular, biomineralized tissues are often sophisticate composite materials, in which the components and the interfaces between them have been defined and optimized, and that present unusual and optimal chemical-physical, morphological and mechanical properties. Moreover, biominerals are generally produced by easily traceable raw materials, in aqueous media and at room pressure and temperature, that is through cheap process and materials. Thus, it is not surprising that the idea to mimic those strategies proper of Nature has been employed in several areas of applied sciences, such as for the preparation of liquid crystals, ceramic thin films computer switches and many other advanced materials. On this basis, this PhD thesis is focused on the investigation of the interaction of biologically active ions and molecules with calcium phosphates with the aim to develop new materials for the substitution and repair of skeletal tissue, according to the following lines: I. Modified calcium phosphates. A relevant part of this PhD thesis has been addressed to study the interaction of Strontium with calcium phosphates. It was demonstrated that strontium ion can substitute for calcium into hydroxyapatite, causing appreciable structural and morphological modifications. The detailed structural analysis carried out on the nanocrystals at different strontium content provided new insight into its interaction with the structure of hydroxyapatite. At variance with the behaviour of Sr towards HA, it was found that this ion inhibits the synthesis of octacalcium phosphate. However, it can substitute for calcium in this structure up to 15 atom %, in agreement with the increase of the cell parameters observed on increasing ion concentration. A similar behaviour was found for Magnesium ion, whereas Manganese inhibits the synthesis of octacalcium phosphate and it promotes the precipitation of dicalcium phosphate dehydrate. It was also found that Strontium affects the kinetics of the reaction of hydrolysis of α-TCP. It inhibits the conversion from α-TCP to hydroxyapatite. However, the resulting apatitic phase contains significant amounts of Sr2+ suggesting that the addition of Sr2+ to the composition of α-TCP bone cements could be successfully exploited for its local delivery in bone defects. The hydrolysis of α-TCP has been investigated also in the presence of increasing amounts of gelatin: the results indicated that this biopolymer accelerates the hydrolysis reaction and promotes the conversion of α-TCP into OCP, suggesting that its addition in the composition of calcium phosphate cements can be employed to modulate the OCP/HA ratio, and as a consequence the solubility, of the set cement. II. Deposition of modified calcium phosphates on metallic substrates. Coating with a thin film of calcium phosphates is frequently applied on the surface of metallic implants in order to combine the high mechanical strength of the metal with the excellent bioactivity of the calcium phosphates surface layers. During this PhD thesis, thank to the collaboration with prof. I.N. Mihailescu, head of the Laser-Surface-Plasma Interactions Laboratory (National Institute for Lasers, Plasma and Radiation Physics – Laser Department, Bucharest) Pulsed Laser Deposition has been successfully applied to deposit thin films of Sr substituted HA on Titanium substrates. The synthesized coatings displayed a uniform Sr distribution, a granular surface and a good degree of crystallinity which slightly decreased on increasing Sr content. The results of in vitro tests carried out on osteoblast-like and osteoclast cells suggested that the presence of Sr in HA thin films can enhance the positive effect of HA coatings on osteointegration and bone regeneration, and prevent undesirable bone resorption. The possibility to introduce an active molecule in the implant site was explored using Matrix Assisted Pulsed Laser Evaporation to deposit hydroxyapatite nanocrystals at different content of alendronate, a bisphosphonate widely employed in the treatments of pathological diseases associated to bone loss. The coatings displayed a good degree of crystallinity, and the results of in vitro tests indicated that alendronate promotes proliferation and differentiation of osteoblasts even when incorporated into hydroxyapatite. III. Synthesis of drug carriers with a delayed release modulated by a calcium phosphate coating. A core-shell system for modulated drug delivery and release has been developed through optimization of the experimental conditions to cover gelatin microspheres with a uniform layer of calcium phosphate. The kinetics of the release from uncoated and coated microspheres was investigated using aspirin as a model drug. It was shown that the presence of the calcium phosphate shell delays the release of aspirin and allows to modulate its action.

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The aim of this Ph.D. project has been the design and characterization of new and more efficient luminescent tools, in particular sensors and labels, for analytical chemistry, medical diagnostics and imaging. Actually both the increasing temporal and spatial resolutions that are demanded by those branches, coupled to a sensitivity that is required to reach the single molecule resolution, can be provided by the wide range of techniques based on luminescence spectroscopy. As far as the development of new chemical sensors is concerned, as chemists we were interested in the preparation of new, efficient, sensing materials. In this context, we kept developing new molecular chemosensors, by exploiting the supramolecular approach, for different classes of analytes. In particular we studied a family of luminescent tetrapodal-hosts based on aminopyridinium units with pyrenyl groups for the detection of anions. These systems exhibited noticeable changes in the photophysical properties, depending on the nature of the anion; in particular, addition of chloride resulted in a conformational change, giving an initial increase in excimeric emission. A good selectivity for dicarboxylic acid was also found. In the search for higher sensitivities, we moved our attention also to systems able to perform amplification effects. In this context we described the metal ion binding properties of three photoactive poly-(arylene ethynylene) co-polymers with different complexing units and we highlighted, for one of them, a ten-fold amplification of the response in case of addition of Zn2+, Cu2+ and Hg2+ ions. In addition, we were able to demonstrate the formation of complexes with Yb3+ an Er3+ and an efficient sensitization of their typical metal centered NIR emission upon excitation of the polymer structure, this feature being of particular interest for their possible applications in optical imaging and in optical amplification for telecommunication purposes. An amplification effect was also observed during this research in silica nanoparticles derivatized with a suitable zinc probe. In this case we were able to prove, for the first time, that nanoparticles can work as “off-on” chemosensors with signal amplification. Fluorescent silica nanoparticles can be thus seen as innovative multicomponent systems in which the organization of photophysically active units gives rise to fruitful collective effects. These precious effects can be exploited for biological imaging, medical diagnostic and therapeutics, as evidenced also by some results reported in this thesis. In particular, the observed amplification effect has been obtained thanks to a suitable organization of molecular probe units onto the surface of the nanoparticles. In the effort of reaching a deeper inside in the mechanisms which lead to the final amplification effects, we also attempted to find a correlation between the synthetic route and the final organization of the active molecules in the silica network, and thus with those mutual interactions between one another which result in the emerging, collective behavior, responsible for the desired signal amplification. In this context, we firstly investigated the process of formation of silica nanoparticles doped with pyrene derivative and we showed that the dyes are not uniformly dispersed inside the silica matrix; thus, core-shell structures can be formed spontaneously in a one step synthesis. Moreover, as far as the design of new labels is concerned, we reported a new synthetic approach to obtain a class of robust, biocompatible silica core-shell nanoparticles able to show a long-term stability. Taking advantage of this new approach we also showed the synthesis and photophysical properties of core-shell NIR absorbing and emitting materials that proved to be very valuable for in-vivo imaging. In general, the dye doped silica nanoparticles prepared in the framework of this project can conjugate unique properties, such as a very high brightness, due to the possibility to include many fluorophores per nanoparticle, high stability, because of the shielding effect of the silica matrix, and, to date, no toxicity, with a simple and low-cost preparation. All these features make these nanostructures suitable to reach the low detection limits that are nowadays required for effective clinical and environmental applications, fulfilling in this way the initial expectations of this research project.

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The aim of my dissertation is to provide new knowledge and applications of microfluidics in a variety of problems, from materials science, devices, and biomedicine, where the control on the fluid dynamics and the local concentration of the solutions containing the relevant molecules (either materials, precursors, or biomolecules) is crucial. The control of interfacial phenomena occurring in solutions at dierent length scales is compelling in nanotechnology for devising new sensors, molecular electronics devices, memories. Microfluidic devices were fabricated and integrated with organic electronics devices. The transduction involves the species in the solution which infills the transistor channel and confined by the microfluidic device. This device measures what happens on the surface, at few nanometers from the semiconductor channel. Soft-lithography was adopted to fabricate platinum electrodes, starting from platinum carbonyl precursor. I proposed a simple method to assemble these nanostructures in periodic arrays of microstripes, and form conductive electrodes with characteristic dimension of 600 nm. The conductivity of these sub-microwires is compared with the values reported in literature and bulk platinum. The process is suitable for fabricating thin conductive patterns for electronic devices or electrochemical cells, where the periodicity of the conductive pattern is comparable with the diusion length of the molecules in solution. The ordering induced among artificial nanostructures is of particular interest in science. I show that large building blocks, like carbon nanotubes or core-shell nanoparticles, can be ordered and self-organised on a surface in patterns due to capillary forces. The eective probability of inducing order with microfluidic flow is modeled with finite element calculation on the real geometry of the microcapillaries, in soft-lithographic process. The oligomerization of A40 peptide in microconfined environment represents a new investigation of the extensively studied peptide aggregation. The added value of the approach I devised is the precise control on the local concentration of peptides together with the possibility to mimick cellular crowding. Four populations of oligomers where distinguished, with diameters ranging from 15 to 200 nm. These aggregates could not be addresses separately in fluorescence. The statistical analysis on the atomic force microscopy images together with a model of growth reveal new insights on the kinetics of amyloidogenesis as well as allows me to identify the minimum stable nucleus size. This is an important result owing to its implications in the understanding and early diagnosis and therapy of the Alzheimer’s disease

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Oggigiorno si osserva a livello mondiale un continuo aumento dei consumi di acqua per uso domestico, agricolo ed industriale che dopo l’impiego viene scaricata nei corpi idrici (laghi, fiumi, torrenti, bacini, ecc) con caratteristiche chimico fisiche ed organolettiche completamente alterate, necessitando così di specifici trattamenti di depurazione. Ricerche relative a metodi di controllo della qualità dell’acqua e, soprattutto, a sistemi di purificazione rappresentano pertanto un problema di enorme importanza. I trattamenti tradizionali si sono dimostrati efficienti, ma sono metodi che operano normalmente trasferendo l’inquinante dalla fase acquosa contaminata ad un’altra fase, richiedendo perciò ulteriori processi di depurazione. Recentemente è stata dimostrata l’efficacia di sistemi nano strutturati come TiO2-Fe3O4 ottenuto via sol-gel, nella foto-catalisi di alcuni sistemi organici. Questo lavoro di tesi è rivolto alla sintesi e caratterizzazione di un catalizzatore nanostrutturato composito costituito da un core di Fe3O4 rivestito da un guscio di TiO2 separate da un interstrato inerte di SiO2, da utilizzare nella foto-catalisi di sistemi organici per la depurazione delle acque utilizzando un metodo di sintesi alternativo che prevede un “approccio” di tipo colloidale. Partendo da sospensioni colloidali dei diversi ossidi, presenti in commercio, si è condotta la fase di deposizione layer by layer via spray drying, sfruttando le diverse cariche superficiali dei reagenti. Questo nuovo procedimento permette di abbattere i costi, diminuire i tempi di lavoro ed evitare possibili alterazioni delle proprietà catalitiche della titania, risultando pertanto adatto ad una possibile applicazione su scala industriale. Tale sistema composito consente di coniugare le proprietà foto-catalitiche dell’ossido di titanio con le proprietà magnetiche degli ossidi di ferro permettendo il recupero del catalizzatore a fine processo. Il foto-catalizzatore è stato caratterizzato durante tutte la fasi di preparazione tramite microscopia SEM e TEM, XRF, Acusizer, spettroscopia Raman e misure magnetiche. L’attività foto-calitica è stata valutata con test preliminari utilizzando una molecola target tipo il rosso di metile in fase acquosa. I risultati ottenuti hanno dimostrato che il sistema core-shell presenta inalterate sia le proprietà magnetiche che quelle foto-catalitiche tipiche dei reagenti.

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Die Synthese funktionalisierter Polyorganosiloxan-µ-Netzwerke (Rh = 5 – 30 nm) gelingt durch Polycokondensation von Alkoxysilanen. Die entstehenden sphärischen Teilchen sind in unpolaren organischen Lösungsmitteln partikulär dispergierbar. Durch die sequentielle Zugabe der Silanmonomere können Kern-Schale-Partikel mit unterschiedlichen Teilchenarchitekturen realisiert werden. In der vorliegenden Arbeit wird p-Chlormethylphenyltrimethoxysilan als funktionalisiertes Monomer verwendet, um den µ-Netzwerken durch eine anschließende Quaternisierung der Chlorbenzylgruppen mit Dimethylaminoethanol amphiphile Eigenschaften zu verleihen. Durch den Kern-Schale-Aufbau der Partikel sind die hydrophilen Bereiche im Kugelinneren von der hydrophoben äußeren Schale separiert, was unerläßlich für die Verwendung der Partikel zur Verkapselung wasserlöslicher Substanzen ist.So können in den amphiphilen µ-Netzwerken beispielsweise wasserlösliche Farbstoffe verkapselt werden. Diese diffundieren sowohl aus Lösung als auch aus dem Festkörper in das geladene Partikelinnere und werden dort angereichert. Es wird eine Abhängigkeit der Farbstoffbeladung vom Quaternisierungsgrad gefunden, wobei die Anzahl an verkapselten Farbstoffmolekülen mit dem Quaternisierungsgrad zunimmt.Weiterhin können amphiphile µ-Gelpartikel auch als molekulare Nanoreaktoren zur Synthese von Edelmetallkolloiden verwendet werden, die in den Netzwerken topologisch gefangen sind. Hierzu werden zuerst Metallionen im Kugelinneren verkapselt und anschließend reduziert, wobei das Kolloidwachstum durch den wohldefinierten Reaktionsraum gesteuert wird. Neben Gold- und Palladiumkolloiden können auf diese Weise beispielsweise auch Silberkolloide in den Kernen von µ-Netzwerken hergestellt werden.

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Die Doktorarbeit gliedert sich in zwei Abschnitte. Das erste Kapitel beschäftigt sich mit den hyperverzweigten Polyphenylenen. Es wurden Untersuchungen des Molekulargewichts in Abhängigkeit von der Monomerkonzentration und der Reaktionszeit durchgeführt. Die synthetisierten Polymere haben große Polydispersitäten, die durch fraktioniertes Fällen herabgesetzt werden können. Die Funktionalisierung der hyperverzweigten Polyphenylene mit unterschiedlichen Methoden führt zu verschiedenen Funktionen auf der Oberfläche der Polymere. Die chlormethylierten hyperverzweigen Polymere können als Makroinitiator für den Aufbau von Kern-Schale-Systemen genutzt werden. Mit Hilfe der ATRP-Polymerisation wurde Methylmethacrylat anpolymerisiert. Als Charakterisierungsmethode zur Bestimmung des freien Volumens findet die Positronenauslöschungsspektroskopie Anwendung. Im zweiten Teil der Arbeit stehen die Synthese und Charakterisierung von redoxaktiven Dendrimeren mit Triphenylamin- bzw. Naphthalinkern im Mittelpunkt. Den Einfluß der Dendrimerhülle auf die Redoxaktivität zeigen cyclovoltammetrische Untersuchungen. Die Zunahme der dendritischen Hülle führt zu einer Abschirmung des Redoxzentrums gegen die Elektrode und damit zu einer Inhibierung des Elektronentransfers. Das spiegelt sich in der Abnahme der Geschwindigkeitskonstanten sowie in der Ausdehnung der cyclovoltammetrischen Kurve wieder. Die Funktionalisierung der Triphenylamin-Dendrimere mit Chromophoren auf der Oberfläche führt zu einer Änderung der optische Eigenschaften, die mit Hilfe von Absorptions- und Emissionsmessungen untersucht wurden.

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In der vorliegenden Arbeit wurden verschiedene Topologien von Polymakromonomeren auf unterschiedlichen chemischen Routen synthetisiert und mit verschiedenen Methoden charakterisiert. Es wurden Polyalkylmakromonomere, Kern-Schale zylindrische Bürsten (Poly[styrol-block-alkylmakromonomere]), Polystyrolmakromonomere und Blockcopolymere aus zylindrischer Polystyrolbürste und linearem t--BuMA--Knäuel synthetisiert. Die Synthese der Polyalkylmakromonomere und der Kern--Schale zylindrischen Bürsten wurde durch die freie radikalische Polymerisation von Makromonomeren erreicht. Die unterschiedlichen Eigenschaften der Polymakromonomere wurden mit verschiedenen Methoden (Lichtstreuung, Neutronenstreuung, DSC, AFM und NMR) untersucht. Die metalloceninitiierte Polymerisation von Polystyrolmakromonomeren führte zum ersten Mal zu Polymerisationsgraden der Hauptkette von mehr als 1000, so dass eine neue chemische Route zur Synthese von zylindrischen Bürsten entwickelt werden konnte. Die partiell lebende metalloceninitiierte Polymerisation erlaubt weiterhin zum ersten Mal die Synthese von Blockstrukturen, die einen zylindrischen Bürstenteil und einen linearen Knäuelteil (t--BuMA) aufweisen. Diese Blockcopolymere bilden nach Abspaltung der tert.--Butylgruppe und Neutralisation der freien Polymethacrylsäure mit Cäsiumhydroxid ein sehr großes Amphiphil, das in einem selektiven Lösungsmittel (z.~B. THF) eine mizellare überstruktur ausbildet. Der mizellare Charakter dieser überstrukturen wurde mit der hochauflösenden Transmissionselektronenmikroskopie/EDX bewiesen. Der mit der TEM beobachtete Durchmesser einer solchen Riesenmizelle erreicht Werte von bis zu 300 nm.

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Complexes of polyelectrolytes with defined charge distance and different dendrimer counterions Magdalena Chelmecka Max Planck Institute for Polymer Research; Ackermannweg 10; D-55128 Mainz ; Tel.: (+49) 06131- 379 – 226 A study of complexes in solution is of interest to investigate whether the formation of well-defined assemblies like in classical surfactant systems is possible. Aim of this thesis is to investigate the electrostatic self-assembly of linear polycations of varying charge distance with “large” counterions of varying architecture. We especially investigate the morphology of objects formed, but also their stability under salt free condition and after low molecular mass salt addition. As polycations, Poly(dialkylimino)-alkylene salts (Ionenes) I65MeBr and I25MeBr were chosen. Ionenes are synthesized via Menschutkin reaction and characterized by standard methods. Counterions are Polyamidoamine (PAMAM) dendrimers of generations G2.5, G5.5, G7.5 with -COONa surface groups and shape-persistent, Polyphenylene dendrimers of generation G1 with surface -COOH groups. A complex interplay of interactions is expected to direct the self assembly via electrostatic interaction, geometric factors, hydrophobic interaction or hydrogen bonds. Methods used for the investigation of complexes are: UV-spectroscopy, pH-metric techniques, dynamic and static light scattering, small angle neutron scattering,  potential measurements and potentiometric titration. Under certain conditions, (i.e. charge ratio of compounds, charge density of ionene and dendrimer also concentration of sample) polyelectrolyte systems composed of ionenes and dendrimers build complexes in solution. System compounds are typical polyelectrolytes, but structures which they build behave not usual for typical polyelectrolytes. In a one diffusion mode regime aggregates of about 100 nm hydrodynamic radius have been found. Such aggregates are core-shell or anisotropic core shell structures in the case of ionenes/PAMAM dendrimers complexes. These complexes are stable even at high ionic strength. In case of ionenes with poly(phenylene) dendrimers, hard sphere-like objects or spherical objects with hairy-like surface have been found in a one diffusion mode regime. Their stability at high ionic strength is lower. For the ionenes/poly(phenylene) dendrimers systems one transition point has been found from one to two diffusion processes, towards increasing ionene concentration, i.e. for the samples with fixed dendrimer concentration towards increasing ionic strength. For the diffusion profile of ionene/PAMAM dendrimers in most cases two transition regimes are observed. One at very low ionene concentration, the second one at high ionene concentrations, which again means for the samples with fixed dendrimer concentration, also at higher ionic strength. Both two mode regimes are separated by the one mode regime. As was confirmed experimentally, the one diffusion mode regime is caused by the motion of well defined assemblies. The two diffusion mode regimes are caused by the movement of different sized species in solution, large aggregates and middle-size aggregates (oligoaggregates). The location and also the number of transition points in the diffusion profiles is dependent on the ionene to dendrimer charge ratio, charge density of the compounds and concentration. No influence of the molecular mass of the ionene has been found. The aggregates are found to be charged on the surface, however this surface charge does not significantly influence the diffusion properties of the system.

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„Untersuchung des Aggregationsverhaltens amphiphiler Diblockcopolymere in überkritischem Kohlendioxid mittels dynamischer Lichtstreuung“ In der vorliegenden Arbeit wurde die Mizellenbildung von Diblockcopolymeren des Typs PS-b-PDMS in überkritischem Kohlendioxid (CO2,SC) mittels dynamischer Lichtstreuung (DLS) charakterisiert. Zu diesem Zweck wurden Mischungen aus den Diblockcopolymeren in CO2,SC mit Styrol als Monomer druckabhängig auf diese Fähigkeit hin untersucht. Eine Mizellenbildung konnte anhand der gemessenen hydrodynamischen Radien Rh gezeigt werden. Um eine Vergleichsmöglichkeit gegenüber den mit Styrol gefüllten Kern-Hüllen-Mizellen zu bekommen, wurde das Diblockcopolymer PS-b-PDMS (9/27) zunächst ohne Styrol auf die Fähigkeit hin untersucht ungefüllte Mizellen zu bilden. Durch Druckvariation konnte ein kritischer Mizellendruck von ca. 46,7 MPa bei einer Temperatur von 338 K im Experiment bestätigt werden, der gefundene Rh liegt bei ca. 34 nm. Dagegen setzt die Aggregation bei einer PS-b-PDMS (9/27)/Styrol/CO2,SC- Mischung bei einem wesentlich niedrigeren Druck ein. Durch Druckvariation zwischen 38 MPa und 45,7 MPa wurde eine Größenänderung der Mizellen beobachtet. Durch zeitabhängige-DLS-Messungen am gleichen System bei einem bestimmten Druck wurde ein langsames Schrumpfen der Mizellen gefunden. Um den Einfluß der Blockgröße der verwendeten Amphiphile auf die Mizellenbildung zu untersuchen wurde das System PS-b-PDMS(6/37)/Styrol/CO2,SC mit Hilfe der DLS im Bereich zwischen 39,4 MPa und 43,1 MPa untersucht. Die Druckänderung zeigte für Rh ein nahezu invariantes Verhalten, daß durch eine verlängerte PDMS-Blocklänge und eine damit verbundene Kompensation der verschiedenen Wechselwirkungskräfte zwischen Mizellenkern, -hülle und CO2,SC erklärt werden kann. Im System PS-b-PDMS(6/16)/Styrol/CO2,SC konnte experimentell mit Hilfe der DLS erst nach einer ver-änderten molaren Zusammensetzung eine Mizellenbildung ab 40 MPa ermöglicht werden. Allerdings ändert sich auch in diesem System der hydrodynamische Radius ebenfalls mit dem Druck. Je nach Druck-, Temperatur- und molarer Zusammensetzung variiert die Tendenz der Systeme, Mizellen zu bilden die eine Emulsion stabilisieren können. Für die in Dispersions-Polymerisationsreaktionen eingesetzten Diblockcopolymere bedeutet dieses Ergebnis differenzierte Applikationsmöglichkeiten. Mit den ermittelten Konzentrationsverhältnissen an Amphiphil und Monomer konnte ein Bereich gefunden werden, in dem die thermodynamischen Bedingungen für die Mizellenbildung einerseits und die Vorraussetzungen für die DLS andererseits gegeben sind.

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In dieser Arbeit wurden zwei Wege zur sauer katalysierten Synthese von Polyorganosiloxan-Kern-Schale-Nanopartikeln mit monomodaler Größenverteilung erarbeitet. Zum einen führt eine Erhöhung der Rührergeschwindigkeit auf 14000 rpm unter Verwendung eines Ultrathorax, während der ersten Stunde der Kondensation des Kernes zu Nanokugeln mit einer monomodalen Größenverteilung mit einem hydrodynamischen Radius von 33.1 nm +/- 22%. Zum anderen eröffnete die Reduktion des Flottenverhältnisses S, d.h. des Verhältnisses von Tensid- zu Monomermenge, von S=0.02 auf S=0.001 einen zweiten Weg zur Synthese von Nanokugeln mit monomodaler Größenverteilung. Der Radius dieser Kugeln beträgt 54.2 nm +/- 20%. Durch diese beiden Synthesewege sind Polyorganosiloxan-Nanokugeln in zwei verschiedenen Größen zugänglich. Durch 29Si-NMR-Messungen der Kerndispersion konnte gezeigt werden, dass die Ursache der bimodalen Größenverteilung der Polyorganosiloxan-Nanokugeln in der Synthese der Kerndispersion zu finden ist. Aus den hieraus ermittelten Ergebnissen geht hervor, dass sich während der sauer katalysierten Kondensation von Diethoxydimethylsilan neben den PDMS-Ketten auch zyklische Kondensationsprodukte bilden. Die während der Reaktion fortschreitende Bildung von Zyklen - insbesondere von Vierringen - bewirkt eine Phasenseparation der Dispersion. Dies führt zur beobachteten Bildung der bimodalen Größenverteilung der Polyorganosiloxan-Nanokugeln. Wird die Rührergeschwindigkeit auf 14000 rpm während der ersten Stunde der Kondensation des Kernes erhöht, wird eine verminderte Ringbildung gefunden. Der erhöhte Energieeintrag und die damit verbundene bessere Durchmischung der Dispersion während der ersten Stunde der Kondensation des Kerns führt bevorzugt zum Kettenwachstum, so dass die Tendenz zur Ringbildung verringert wird. Es tritt keine Phasenseparation auf, wodurch die beobachtete monomodale Größenverteilung der Nanokugeln erklärt wird. Wird das Flottenverhältnis reduziert und somit der pH-Wert der Lösung erhöht, werden bevorzugt offenkettige PDMS-Produkte gebildet. Die Bildung von Vierringen erfolgt nicht, Ringe höherer Ordnung werden nur in untergeordneter Menge gebildet. Es erfolgt keine Phasenseparation der Dispersion und eine monomodale Größenverteilung der Polyorganosiloxan-Nanokugeln wird erhalten. Die durch Erniedrigung des Flottenverhältnisses synthetisierten Polyorganosiloxan-Nanokugeln zeigten in AFM-Experimenten interessante Eigenschaften. So ist es möglich, die Nanokugeln auf einer Mica-Oberfläche mittels der AFM-Spitze zu manipulieren, ohne sie hierbei sie degradieren. Die sauer katalysierte Synthese ermöglicht die Einführung von basenlabilen Hydridgruppen in die Polyorganosiloxan-Nanokugeln. Ausgehend von in organischen Lösungsmitteln redispergierbaren Polyorganosiloxan-Nanokugeln, deren Oberfläche mit Hydridgruppen funktionalisiert wurde, konnten durch Hydrosilylierung mit allylterminiertem Polyethylenoxid wasserlösliche potentielle Nanokontainer synthetisiert werden.

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'Responsive' Bürstenpolymere Bürstenpolymere sind definiert verzweigte Makromoleküle, die aus einer Hauptkette und vielen darauf (kovalent) gepfropften Seitenketten bestehen; ist der Pfropfungsgrad hoch und die Hauptkette wesentlich länger als die Seitenketten, dann haben sie die Form semiflexibler molekularer Zylinder. Lassen sich Form bzw. Ausdehnung eines solchen Zylinders gezielt ansteuern, dann könnten diese Moleküle entweder als (Nano-)Sensoren für die entsprechende Umgebungsbedingung oder als molekulare Motoren eingesetzt werden. Die Idee responsiver Bürstenpolymere beruht auf folgender Überlegung: Die gestreckte Konformation der Hauptkette ist entropisch gegenüber einem entsprechenden Knäuel benachteiligt, weshalb sie ,molekulare Federn‘ darstellen, die auf Änderung der repulsiven Wechselwirkung zwischen den Seitenketten reagieren. Dies wurde für den Wechsel zwischen gutem und schlechtem Lösungsmitteln untersucht. Ein zweites Konzept zur Änderung der Molekülform beruht auf der intramolekularen Phasentrennung (,Segmentbildung‘) miteinander unverträglicher Seitenketten in selektiven Lösungsmitteln, da die Hauptkette durch Ausbildung von Mikrophasen entlang des Moleküls ebenfalls aus ihrer gestreckten Form gebracht werden sollte. Die dritte Möglichkeit zur Änderung der Konformation ist die intramolekulare Vernetzung von Seitenketten, die ebenfalls zu verringerter Abstoßung und damit zur Verkürzung der Zylinder führen sollte. Eine weitere wichtige Untersuchung der Arbeit war der Übergang einer geknäuelten Hauptkette zu einer gestreckten Bürste als Funktion der Pfropfdichte. Zur Beantwortung dieser Fragestellungen wurden zylindrische Bürstenpolymere durch ,Grafting Trough‘ und ,Grafting Onto‘ synthetisiert (PS bzw. PI/PS und PnBMA/PMAA mit Kern/Schale- und ,Segment‘-Architektur) und systematisch Pfropfdichte, Vernetzungsgrad (Vernetzung durch gamma-Bestrahlung) und Lösungsbedingungen verändert. Die Möglichkeit gezielter Ansteuerung der Konformationsänderung durch Vernetzung konnte nach polymeranaloger Modifikation von PI/PS-Bürstenpolymeren durch Photovernetzung und vernetzende Komplexierung erfolgreich bestätigt werden. Zur Untersuchung der Probenreihen wurden AFM, Licht- und Neutronenstreuung herangezogen. Die Analysen bestätigten konsistent die Änderung von Steifigkeit, Zylinderquerschnitt und Streckung der Hauptkette durch Variation von Pfropfdichte, Vernetzung und Lösungsmittelqualität. Für die Änderung der Pfropfdichte gehorchen die Parameter dabei Potenzgesetzen.

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The common thread of this thesis is the will of investigating properties and behavior of assemblies. Groups of objects display peculiar properties, which can be very far from the simple sum of respective components’ properties. This is truer, the smaller is inter-objects distance, i.e. the higher is their density, and the smaller is the container size. “Confinement” is in fact a key concept in many topics explored and here reported. It can be conceived as a spatial limitation, that yet gives origin to unexpected processes and phenomena based on inter-objects communication. Such phenomena eventually result in “non-linear properties”, responsible for the low predictability of large assemblies. Chapter 1 provides two insights on surface chemistry, namely (i) on a supramolecular assembly based on orthogonal forces, and (ii) on selective and sensitive fluorescent sensing in thin polymeric film. In chapters 2 to 4 confinement of molecules plays a major role. Most of the work focuses on FRET within core-shell nanoparticles, investigated both through a simulation model and through experiments. Exciting results of great applicative interest are drawn, such as a method of tuning emission wavelength at constant excitation, and a way of overcoming self-quenching processes by setting up a competitive deactivation channel. We envisage applications of these materials as labels for multiplexing analysis, and in all fields of fluorescence imaging, where brightness coupled with biocompatibility and water solubility is required. Adducts of nanoparticles and molecular photoswitches are investigated in the context of superresolution techniques for fluorescence microscopy. In chapter 5 a method is proposed to prepare a library of functionalized Pluronic F127, which gives access to a twofold “smart” nanomaterial, namely both (i)luminescent and (ii)surface-functionalized SCSSNPs. Focus shifts in chapter 6 to confinement effects in an upper size scale. Moving from nanometers to micrometers, we investigate the interplay between microparticles flowing in microchannels where a constriction affects at very long ranges structure and dynamics of the colloidal paste.