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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
11

Origin and metal content of magmatic sulfides in Cu-Au mineralizing silicic magmas : Yanacocha, Peru and Yerington, Nevada /

Brennecka, Gregory A. January 1900 (has links)
Thesis (M.S.)--Oregon State University, 2006. / Printout. Includes bibliographical references (leaves 36-39). Also available on the World Wide Web.
12

Copper, Silver, and Gold Clusters: A Synthetic and Structural Investigation

Davis, Harrison Olivia 29 May 2019 (has links)
No description available.
13

The effects of Alumina purity, TICUSIL® braze preform thickness and post-grinding heat treatment on the microstructure, mechanical and nanomechanical properties of Alumina-to-Alumina brazed joints

Kassam, Tahsin Ali January 2017 (has links)
Alumina-to-alumina brazed joints were formed using 96.0 and 99.7 wt.% Al2O3 ceramics in as-ground and in ground and heat treated conditions using TICUSIL® (68.8Ag-26.7Cu-4.7Ti wt.%) braze preforms of thicknesses ranging from 50 to 250 μm. Brazing was conducted in a vacuum of 1 x 10-5 mbar at 850 °C for 10 minutes. Joint strengths were evaluated using four-point bend testing and were compared to the flexural strengths of standard test bars according to ASTM C1161-13. Post-grinding heat treatment, performed at 1550 °C for 1 hour, did not affect the average surface roughness or grain size of either grade of alumina but affected their average flexural strengths, with a small increase for 96.0 wt.% Al2O3 and a small decrease for 99.7 wt.% Al2O3. Post-grinding heat treatment led to secondary phase migration, creating a fissured 96.0 wt.% Al2O3 surface. This affected the reliability of 96.0 wt.% Al2O3 brazed joints, in which braze infiltration was observed. As the TICUSIL® braze preform thickness was increased from 50 to 150 μm, the average strengths of both 96.0 and 99.7 wt.% Al2O3 brazed joints improved. This occurred due to a microstructural evolution, in both sets of joints, which was studied using SEM, TEM and nanoindentation techniques. An increase in the TICUSIL® braze preform thickness increased the amount of Ti which was available to diffuse to the joint interfaces. This led to increases in both, reaction layer and braze interlayer thicknesses. Excess Ti in joints that were made using TICUSIL® braze preforms thicker than 50 μm, led to relatively hard Cu-Ti phases in an Ag-Cu braze interlayer. Cu-Ti phase formation, which may have reinforced joint strength whilst also reducing CTE mismatch at the joint interface, also led to Ag-rich braze outflow at the joint edges. Brazed joints made using as-ground 96.0 wt.% Al2O3 consistently outperformed brazed joints made using as-ground 99.7 wt.% Al2O3, due to the formation of Ti5Si3 phases at locations where the Ti-rich reaction layer intersected with the triple pocket grain boundary regions of the as-ground 96.0 wt.% Al2O3 surface.
14

Mise en oeuvre d'une approche multi-échelles fondée sur le champ de phase pour caractériser la microstructure des matériaux irradiés : application à l'alliage AgCu / A multi scale approach based on phase field to caracterize the microstructure of materials under irradiation : application to AgCu

Demange, Gilles 13 October 2015 (has links)
Anticiper l’évolution de la microstructure d’un matériau en condition d’usage est d’une importance cruciale pour l’industrie. Cette maîtrise du vieillissement nécessite une compréhension claire des mécanismes sous-jacents, qui agissent sur une large gamme d’échelles spatiales et temporelles. Dans cette optique, ce travail de thèse a choisi d’appliquer la méthode de champ de phase qui, en raison du saut d’échelle qu’elle réalise naturellement, est un outil intensivement employé dans le domaine des matériaux, pour prédire l’évolution en temps long de la microstructure. L’enjeu de l’étude a été d’étendre cette méthode à un système porté loin de l’équilibre thermodynamique, en particulier en présence d’irradiation. Nous avons ainsi adopté le formalisme du mélange ionique, introduit par Gras-Marti pour décrire le mélange balistique au sein d’une cascade de déplacements. Par l’utilisation conjointe d’un schéma numérique et d’une approche analytique, il nous a été possible d’établir le diagramme de phase générique d’un matériau irradié. Nous avons ensuite étudié le vieillissement de l’alliage binaire test AgCu sous irradiation, par l’utilisation conjointe de la méthode du champ de phase et d’approches atomistiques, dans une démarche multi-échelles. En fixant les paramètres de contrôle que sont le flux d’irradiation et la température, il nous a ainsi été possible de prédire la taille,la concentration ainsi que la distribution spatiale des nodules de cuivre produits sous irradiation dans cet alliage. La connaissance de ces informations a permis de simuler un diagramme de diffraction en incidence rasante, directement comparable aux diagrammes expérimentaux. / It is of dramatic matter for industry to be able to predict the evolution of material microstructure under working conditions. This requires a clear understanding of the underlying mechanisms, which act on numerous space and time scales. Because it intrinsically performs a scale jump, we chose to use a phase field approach, which is widely used amidst the condensed matter community to study the aging of materials. The first challenge of this work was to extend this formalism beyond its thermodynamic scope and embrace the case of far from equilibrium systems when subjected to irradiation. For that purpose, we adopted the model of ion mixing, developed by Gras Marti to account for ballistic exchanges within a displacements cascade. Based on a numerical scheme and ananalytical method, we were able to describe the generic microstructure signature for materials under irradiation.We then applied this formalism to the particular case of the immiscible binary alloy AgCu.With the joined use of the phase field approach and atomistic methods, we managed to predict how the temperature and the irradiation flux tailor the main microstructure features such as the size, the concentration and the distribution of copper precipitates. This eventually allowed us to simulate a diffraction pattern in grazing incidence, which is directly comparable to experimental ones.
15

Mise en oeuvre d'une approche multi-échelles fondée sur le champ de phase pour caractériser la microstructure des matériaux irradiés : application à l'alliage AgCu / A multi scale approach based on phase field to caracterize the microstructure of materials under irradiation : application to AgCu

Demange, Gilles 13 October 2015 (has links)
Anticiper l’évolution de la microstructure d’un matériau en condition d’usage est d’une importance cruciale pour l’industrie. Cette maîtrise du vieillissement nécessite une compréhension claire des mécanismes sous-jacents, qui agissent sur une large gamme d’échelles spatiales et temporelles. Dans cette optique, ce travail de thèse a choisi d’appliquer la méthode de champ de phase qui, en raison du saut d’échelle qu’elle réalise naturellement, est un outil intensivement employé dans le domaine des matériaux, pour prédire l’évolution en temps long de la microstructure. L’enjeu de l’étude a été d’étendre cette méthode à un système porté loin de l’équilibre thermodynamique, en particulier en présence d’irradiation. Nous avons ainsi adopté le formalisme du mélange ionique, introduit par Gras-Marti pour décrire le mélange balistique au sein d’une cascade de déplacements. Par l’utilisation conjointe d’un schéma numérique et d’une approche analytique, il nous a été possible d’établir le diagramme de phase générique d’un matériau irradié. Nous avons ensuite étudié le vieillissement de l’alliage binaire test AgCu sous irradiation, par l’utilisation conjointe de la méthode du champ de phase et d’approches atomistiques, dans une démarche multi-échelles. En fixant les paramètres de contrôle que sont le flux d’irradiation et la température, il nous a ainsi été possible de prédire la taille,la concentration ainsi que la distribution spatiale des nodules de cuivre produits sous irradiation dans cet alliage. La connaissance de ces informations a permis de simuler un diagramme de diffraction en incidence rasante, directement comparable aux diagrammes expérimentaux. / It is of dramatic matter for industry to be able to predict the evolution of material microstructure under working conditions. This requires a clear understanding of the underlying mechanisms, which act on numerous space and time scales. Because it intrinsically performs a scale jump, we chose to use a phase field approach, which is widely used amidst the condensed matter community to study the aging of materials. The first challenge of this work was to extend this formalism beyond its thermodynamic scope and embrace the case of far from equilibrium systems when subjected to irradiation. For that purpose, we adopted the model of ion mixing, developed by Gras Marti to account for ballistic exchanges within a displacements cascade. Based on a numerical scheme and ananalytical method, we were able to describe the generic microstructure signature for materials under irradiation.We then applied this formalism to the particular case of the immiscible binary alloy AgCu.With the joined use of the phase field approach and atomistic methods, we managed to predict how the temperature and the irradiation flux tailor the main microstructure features such as the size, the concentration and the distribution of copper precipitates. This eventually allowed us to simulate a diffraction pattern in grazing incidence, which is directly comparable to experimental ones.
16

The use of metal and metal oxide nanoparticles against biofilms

Tejpal, Jyoti January 2016 (has links)
The persistence of biofilms in hospital settings are associated with Healthcare Associated Infections (HCAI), causing increased morbidity, mortality and healthcare costs. The resistance of biofilms against commonly used hospital disinfectants has been well reported. Metal and metal oxide nanoparticles (NP) such as silver (Ag), copper (Cu), zinc oxide (ZnO) and copper oxide (CuO) exhibit antimicrobial properties against various pathogens. Methods: Biofilm formation of Pseudomonas aeruginosa and Staphylococcus aureus in a Centre for Disease Control (CDC) biofilm reactor and a 96 well plate was compared. A three stage approach including Minimum Biofilm Reduction Concentration (MBRC), R2 values and log(10) reductions was used to assess the efficacy of Ag and ZnO NPs both alone and in combination against P. aeruginosa and S. aureus biofilms. Atomic Absorption Spectroscopy (AAS), Scanning Electron Microscopy (SEM) and Confocal Laser Scanning Microscopy (CLSM) was used to further assess the antimicrobial ability of the metal and metal oxide NPs. The prevention of P. aeruginosa and S. aureus adherence on Ag and ZnO thin film coating on silicon (Si) surfaces was also investigated, as well as icaC, ebpS and fnbB gene expression in S. aureus biofilms. Results: The CDC biofilm reactor demonstrated to be the most effective method for P. aeruginosa and S. aureus biofilm production in comparison to 96 well plates, with lower standard errors of the mean (SE) and higher replicability. Individual MBRC of ZnO and Ag NPs in suspension were 256 and 50 µg/ml for P. aeruginosa and 16 and 50 µg/ml for S. aureus respectively. The concentrations in combination were reduced by at least a half, with concentrations of 32/25 µg/ml of ZnO/Ag NPs in suspension resulting in a significant (p ≤0.05) reduction of 3.77 log(10) against P. aeruginosa biofilms and 8/12 µg/ml of ZnO/Ag NPs in suspension resulted in a 3.91 log(10) (p ≤0.05) against S. aureus biofilms. Both combinations showed an additive effect. Time point analysis confirmed that a 24 hour treatment is vital for any significant (p ≤0.05) antimicrobial activity. AAS data suggested that the Ag+ ions quenched Zn2+ ions, therefore the antimicrobial efficacy of the combination is mainly due to Ag+ ions. Damage of the biofilms from Ag and ZnO NPs was observed in the SEM imaging and energy dispersive X-ray (EDX) analysis confirmed the adherence of Zn and Ag within the biofilms. CLSM imaging showed dead (red) cells of P. aeruginosa and S. aureus biofilms throughout the depth of the biofilm. P. aeruginosa formation was reduced by 1.41 log(10) and 1.43 log(10) on Ag and ZnO thin film coatings respectively. For S. aureus, a reduction of 1.82 log(10) and 1.65 log(10) was obtained for Ag and ZnO coating respectively. Only low levels of ribonucleic acid (RNA) were achieved so no further gene analysis could occur. Conclusion: Reductions of ≥3 log(10) were observed for P. aeruginosa and S. aureus biofilm treatment with ZnO/Ag NP suspensions. It can be concluded that the ZnO/Ag NP suspensions had greater antimicrobial activity than Ag and ZnO coated surfaces owing to large concentrations of Ag+ and Zn2+ ions acting upon the biofilms. The slower release of ions from coated surfaces suggest an inadequate concentration of ions in the media, which are therefore unable to prevent biofilm formation as rapidly as NP suspensions, however provide a sustained release of ions over time. The results from this investigation propose that Ag and ZnO NPs in suspension could be a potential alternative to disinfectants for use in nosocomial environments against P. aeruginosa and S. aureus biofilms.
17

Síntese de ligas à base de Cu-Ni-Ag de alta condutividade elétrica

Luongo, Leilah Delaretti 22 May 2015 (has links)
Made available in DSpace on 2016-03-15T19:36:50Z (GMT). No. of bitstreams: 1 Leilah Delaretti Luongo.pdf: 2162579 bytes, checksum: 76c30f5d2ee2f42b33cf84bd04999ac2 (MD5) Previous issue date: 2015-05-22 / In this work, samples of copper-silver and silver-copper-nickel alloys were synthesized by powder metallurgy. The alloys have received sintering and all of them were characterized metallographically. Different and significant effects were observed in the microstructure and conductivity of the samples studied. The influence of silver on the conductivity of the samples with nickel resulted to be lower than the alloy with chromium and nickel, studied in previous work of the research group, where the same procedures were applied to the same precursors. An interesting result is that the larger crystallite size favored the high electrical conductivity, which is presented in the samples without nickel. The presence of nickel helped to inhibit oxidation and the difference in the amount of nickel influenced the alloys behavior, however, it did not guarantee high conductivity observed in the aforementioned alloys copper-nickel-chromium. The structure of the samples was studied by the Rietveld Method, using data from x-ray diffraction. The differences in microstructure were investigated by comparing the parameters of the pure copper used as a precursor profile. / Neste trabalho foram sintetizadas amostras de ligas metálicas de cobre-prata e cobre-níquel-prata obtidas por metalurgia do pó. As ligas receberam tratamentos térmicos de sinterização e foram caracterizadas metalograficamente. Foram observados efeitos diferentes e significativos na microestrutura e na condutividade das amostras estudadas. A influência da prata na condutividade das amostras com níquel resultou ser inferior à de ligas com cromo e níquel, estudadas em trabalhos precedentes do grupo de pesquisa, onde se aplicaram os mesmos procedimentos aos mesmos precursores. Um resultado interessante é que o maior tamanho de cristalito favoreceu a condutividade elétrica, o qual se apresentou nas amostras sem níquel. A presença do níquel ajudou a inibir a oxidação e a diferença na quantidade de níquel se mostrou importante no comportamento das ligas, porém, não garantiu a alta condutividade verificada nas mencionadas ligas de cobre- níquel-cromo. A estrutura das amostras foi estudada pelo Método de Rietveld, usando dados de difração de raios x. As diferenças na microestrutura foram estudadas através da comparação com os parâmetros de perfil do cobre puro usado como precursor.
18

Synthesis And Study Of Microstructure Evolution In Nanoparticles Of Immiscible Alloys By Laser Ablation Under Liquid Medium

Malviya, Kirtiman Deo 07 1900 (has links) (PDF)
The present thesis deals with synthesis of free alloy nanoparticles in immiscible alloy systems by the process of laser ablation under a liquid. In this process the alloy target is submerged in a liquid and the plume formed by the laser beam interaction with the target is confined in the liquid. The nanoparticles formed inside this plume and get quenched by the surrounding liquid yielding suspension of nanoparticles in the liquid. By the addition of suitable surfactants, these nanoparticles can be protected from other reactions and their size can be controlled by preventing further growth. We have selected immiscible alloys for the present study. These alloys tend to phase separate in melt as well as in solid depending on the value of the positive heat of mixing. We have used two binary alloys for the present study. These are alloys in Ag-Cu system and Fe-Cu system. In both these systems, there are reports of formation of extended solid solution due to kinetic factors during nonequilibrium processing like rapid solidification and mechanical alloying. In the present thesis we report synthesis of alloy nanoparticles of different compositions and sizes in these two systems and explore the nature of the phases that form in the small (nano) particles and their evolutionary pathways leading to the final microstructure. Microscopic techniques, especially transmission electron microscope, were used for characterization of these nanoparticles. The phase evolution was further studied using in situ microscopic techniques. After introducing the thesis in the Chapter 1, we describe briefly the relevant literatures in Chapter 2. The experimental details, in particular the experimental set up for laser ablation with targets under liquid are described in chapter 3. This chapter also includes the experimental details of the characterization. Transmission electron microscopy was used as primary characterization tool in the present study. The Chapter 4 presents the result of our study of alloy nanoparticles in Fe-Cu system. This system exhibits a submerged liquid miscibility gap. Although we have studied alloy targets of different compositions, the results of alloy nanoparticles obtained from targets with compositions Cu-40at.%Fe and Cu-60at.%Fe were primarily presented in this chapter. The nanoparticles that were synthesized had a size range of approximately 40nm to more than 100 nm. These particles have spherical morphology. The measurements of local compositions of different locations in the particle indicate the presence of a layer of Fe3O4 oxide at the spherical surface. This layer is devoid of copper. Most of the copper exist in the core of the particle. Fe rich spherical particles of much smaller size (~15 nm) are found to be embedded in the copper rich core. The copper formed solid solution with Fe and a copper concentration gradient exists in the particle below oxide layer due to oxidation of Fe. In contrast the nanoparticles obtained from alloy target with composition Fe-40at.% Cu have a spherical morphology. These have a composite structure with a Fe core in addition to Fe3O4 oxide layer at the surface. We have attempted to explain the phase evolution taking into account under cooling of the melt condensate that forms in the plume and their subsequent solidification through submerged miscibility gap. The chapters 5-7 deals with alloys of Ag-Cu system. In Chapter 5, we have carried out a detailed study of morphological evolution of the nanoparticles of Ag-Cu system. After optimizing the ablation parameters using pure Ag and Cu targets, we have synthesized alloy nanoparticles using different target compositions over the entire range of compositions with sizes having a mode of 25 nm. The evolution of the two phase structure is shown to be composition dependent with particles near equiatomic composition exhibit solid solution with uniformly distributed segregations of composition (Cu & Ag rich) while copper rich alloys exhibit a core shell structure with outer layer being Ag rich. The isothermal experiments again reveal emergence of core-shell morphology at intermediate time for particles with equiatomic composition. In order to compare the results of Ag-Cu nanoparticles with particles produced by other techniques we have synthesized Ag-Cu nanoparticles of near equiatomic composition by chemical route using nitrate salts and NaBH4 as reducing agent. PVP was used as capping agent. The results are presented in chapter 6. Depending on time of reaction, it is possible to synthesis free alloy particles from 2-3 nm to a network of chains. The nanoparticles contain Ag rich and Ag deficient region with Ag tends to segregate near surface. We have also presented mechanism for the formation of chain structure with prolonged reaction. The thermodynamic basis of phase formation in the immiscible system and evolution of phases under nonequilibrium situation have been discussed in chapter 7. This also includes a model to estimate size dependent surface energy. The analysis presented allows a discussion of possible pathways for phase evolution observed in the present work. The thesis ends with a final chapter that discussed the critical issues remains to be addressed and possible future work.
19

Mise en oeuvre d'une approche multi-échelles fondée sur le champ de phase pour caractériser la microstructure des matériaux irradiés : application à l'alliage AgCu / A multiscale study based on phase field to predict the microstructure of irradiated materials : application to silver-copper alloy

Demange, Gilles 13 October 2015 (has links)
Anticiper l’évolution de la microstructure d’un matériau en condition d’usage est d’une importance cruciale pour l’industrie. Cette maîtrise du vieillissement nécessite une compréhension claire des mécanismes sous-jacents, qui agissent sur une large gamme d’échelles spatiales et temporelles. Dans cette optique, ce travail de thèse a choisi d’appliquer la méthode de champ de phase qui, en raison du saut d’échelle qu’elle réalise naturellement, est un outil intensivement employé dans le domaine des matériaux, pour prédire l’évolution en temps long de la microstructure. L’enjeu de l’étude a été d’étendre cette méthode à un système porté loin de l’équilibre thermodynamique, en particulier en présence d’irradiation. Nous avons ainsi adopté le formalisme du mélange ionique, introduit par Gras-Marti pour décrire le mélange balistique au sein d’une cascade de déplacements. Par l’utilisation conjointe d’un schéma numérique et d’une approche analytique, il nous a été possible d’établir le diagramme de phase générique d’un matériau irradié. Nous avons ensuite étudié le vieillissement de l’alliage binaire test AgCu sous irradiation, par l’utilisation conjointe de la méthode du champ de phase et d’approches atomistiques, dans une démarche multi-échelles. En fixant les paramètres de contrôle que sont le flux d’irradiation et la température, il nous a ainsi été possible de prédire la taille,la concentration ainsi que la distribution spatiale des nodules de cuivre produits sous irradiation dans cet alliage. La connaissance de ces informations a permis de simuler un diagramme de diffraction en incidence rasante, directement comparable aux diagrammes expérimentaux. / It is of dramatic matter for industry to be able to predict the evolution of material microstructure under working conditions. This requires a clear understanding of the underlying mechanisms, which act on numerous space and time scales. Because it intrinsically performs a scale jump, we chose to use a phase field approach, which is widely used amidst the condensed matter community to study the aging of materials. The first challenge of this work was to extend this formalism beyond its thermodynamic scope and embrace the case of far from equilibrium systems when subjected to irradiation. For that purpose, we adopted the model of ion mixing, developed by Gras Marti to account for ballistic exchanges within a displacements cascade. Based on a numerical scheme and ananalytical method, we were able to describe the generic microstructure signature for materials under irradiation.We then applied this formalism to the particular case of the immiscible binary alloy AgCu.With the joined use of the phase field approach and atomistic methods, we managed to predict how the temperature and the irradiation flux tailor the main microstructure features such as the size, the concentration and the distribution of copper precipitates. This eventually allowed us to simulate a diffraction pattern in grazing incidence, which is directly comparable to experimental ones.
20

Herstellung und Charakterisierung periodisch strukturierter Dünnschichten für den Einsatz in optoelektronischen Bauteilen

Schumm, Benjamin 18 July 2013 (has links)
Transparente Elektroden finden breite Verwendung in unterschiedlichen kommerziellen Produkten. Dünnschichtsolarzellen basieren ebenso auf diesen Funktionsschichten wie Displays oder organische Leuchtdioden. Im Falle von Dünnschichtsolarzellen kann durch gezielte Einstellung der Oberflächentextur der transparenten Elektrode ein entscheidender Einfluss auf die erreichbare Effizienz genommen werden. Dabei wird eine Verlängerung der Weglänge des Lichtes im Absorbermaterial durch Mehrfachreflexionen angestrebt. Häufig werden dafür Schichten transparenter leitfähiger Oxide (TCO) gezielt texturiert. Eine weitere Möglichkeit zur Erzeugung transparenter Elektroden stellt die Verwendung feiner Metallgitter dar. Diese ermöglichen hohe Leitfähigkeiten im Bereich der Gitterstege und hohe Transparenz im Bereich zwischen den Stegen. In dieser Arbeit sollte ein auf nasschemischen Prozessen basierendes Verfahren entwickelt werden, mit dem es möglich ist, sowohl strukturierte TCO-Elektroden als auch Metallgitter unterschiedlicher Geometrien gezielt herzustellen. Die Leistungsfähigkeit der Elektroden sollte anhand der Integration in entsprechende Bauteile bewertet werden. Namentlich sollte dieser Prozess für Cd2SnO4 (engl. Cadmium Tin Oxide, CTO) als ein TCO-Material hoher Transparenz und Leitfähigkeit sowie für Silber und Kupfer als metallische Systeme anwendbar sein. Als zielführende Methode kam die Nanoprägelithographie (von engl. Nanoimprint Lithography, NIL) zum Einsatz. Dieses Verfahren erlaubt die schnelle, einfache und kostengünstige Herstellung strukturierter Oberflächen. Grundsätzlich wird dazu ein strukturierter Elastomerstempel in eine Schicht eines zu vernetzenden Materials gepresst. Während des Pressens findet die Vernetzung statt. Nach anschließender Separation von Stempel und Schicht resultiert eine strukturierte Oberfläche. Gängige Präkursorensysteme für anorganische Verbindungen, bei denen Vernetzungsprozesse ablaufen, stellen Sol-Gel-Methoden und sogenannte polymere Präkursoren dar. Für letztere werden Metallzitrate mit Ethylenglykol verestert, um ein vernetztes Polymer zu generieren. Nach thermischem Entfernen der Organik bleibt das Metalloxid zurück. Im Rahmen dieser Arbeit ist ein Präkursorensystem entwickelt worden, das Metallionen komplexiert, auf Glassubstrate beschichtet werden kann und eine thermische Polymerisation erlaubt. Aus dem erhaltenen polymeren Präkursor konnten die Zielverbindungen durch thermisches Zersetzen einerseits in Pulverform und andererseits über vorhergehende Schleuderbeschichtung in Form dünner Schichten erhalten werden. Im Falle des kubischen Cd2SnO4 wurde im Rahmen dieser Arbeit erstmals eine Nanopulver-Synthese mit phasenreinem Produkt aus flüssigem Präkursor beschrieben. Dafür stellten sich der Anteil der verwendeten organischen Bestandteile sowie die Zersetzungsgeschwindigkeit als entscheidende Einflussparameter heraus. Zudem wurden CTO Dünnschichten mit dem beschriebene Präkursor hergestellt. Eine optimale Brenntemperatur zur Erzeugung phasenreiner CTO-Schichten von 700 ‰ wurde ermittelt. Die Zersetzungsgeschwindigkeit (bzw. Aufheizrate) beeinflusste die Oberflächenmorphologie der erhaltenen Schichten maßgeblich. Eine schrittweise Zersetzung (100 ‰°C, 200 °C‰, Zieltemperatur) führte dabei in effizienter Weise zu kompakten Schichten. Diese zeigten sehr gute optische und elektronische Eigenschaften. So konnten etwa 300 nm dicke CTO-Schichten mit spezifischen Widerständen von ca. 1 • 10^(−5) Ohm m bei einer Transmission von etwa 80 % (inklusive Glassubstrat) erhalten werden. Derartige CTO-Schichten konnten erfolgreich als transparente Frontelektroden für a-Si Dünnschichtsolarzellen verwendet werden. Ein positiver Einfluss periodischer Linienstrukturen auf die Lichteinfangeigenschaften und den resultierenden Photostrom im Vergleich zu flachen CTO-Schichten wurde bestätigt. Auch für die Herstellung von CdTe-Dünnschichtsolarzellen konnten die CTO-Schichten erfolgreich eingesetzt werden. Die erreichten Effizienzen lagen jedoch lediglich im Bereich von 3 bis 3,6 %. Ein signifikanter Unterschied zwischen flachen und strukturierten Proben konnte nicht ausgemacht werden. Durch die reduzierenden Eigenschaften von Zitronensäure und Ethylenglykol gegenüber Ag+ und Cu2+ Ionen war es möglich, die Metalle in elementarer Form durch einfache thermische Behandlung des Präkursors zu erhalten. Während dieser Prozess für silberhaltige Systeme relativ einfach zu realisieren war, musste bei kupferhaltigen Proben die Bildung oxidischer Nebenphasen festgestellt werden. So war für Letzteres eine reduktive Nachbehandlung vollständig oxidierter Proben im Wasserstoffplasma zielführend und lieferte leitfähige Dünnschichten mit hohem Cu(0)-Anteil. Im Falle von Silber führte eine geeignete thermische Behandlung der Präkursorschicht zu dünnen, leitfähigen Silberschichten mit spezifischen Widerständen von ca. 6 • 10^(−8) Ohm m (Festkörper: ca.1 • 10^(−8) Ohm m). Die Übertragung des NIL-Prozesses gelang sowohl für silber- als auch kupferhaltige Systeme. Mit NIL-strukturierten Silberdünnschichten gelang so die Herstellung semitransparenter Elektroden mit spezifischen Widerständen von 2,2 • 10^(−7) Ohm m, welche in Elektrolumineszenzbauteilen verwendet wurden. Aufgrund der relativ niedrigen Temperaturen, die für die Zersetzung des Silberpräkursors nötig waren (ca. 250 ‰ ), war die Fertigung entsprechender Elektroden und Bauteile auch auf Polyimidfolien möglich. Insgesamt bleibt die Erkenntnis, dass NIL-strukturierte dünne Schichten erfolgreich in optoelektronische Bauteile integriert werden konnten. Variable Präkursorsysteme erlauben die Herstellung verschiedener Schichten und somit Anwendungen in unterschiedlichen Bauteilen. Polymere Präkursoren haben sich als geeignet für dieses Vorgehen erwiesen und können relativ einfach auf diverse oxidische Stoffsysteme übertragen werden. Gleichzeitig eignen sie sich zur Herstellung metallischer transparenter Elektroden durch NIL-Strukturierung, was insbesondere im Hinblick auf flexible Bauteile von Vorteil ist.

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