956 resultados para 111 SI
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Lasers are essential tools for cell isolation and monolithic interconnection in thin-film-silicon photovoltaic technologies. Laser ablation of transparent conductive oxides (TCOs), amorphous silicon structures and back contact removal are standard processes in industry for monolithic device interconnection. However, material ablation with minimum debris and small heat affected zone is one of the main difficulty is to achieve, to reduce costs and to improve device efficiency. In this paper we present recent results in laser ablation of photovoltaic materials using excimer and UV wavelengths of diode-pumped solid-state (DPSS) laser sources. We discuss results concerning UV ablation of different TCO and thin-film silicon (a-Si:H and nc-Si:H), focussing our study on ablation threshold measurements and process-quality assessment using advanced optical microscopy techniques. In that way we show the advantages of using UV wavelengths for minimizing the characteristic material thermal affection of laser irradiation in the ns regime at higher wavelengths. Additionally we include preliminary results of selective ablation of film on film structures irradiating from the film side (direct writing configuration) including the problem of selective ablation of ZnO films on a-Si:H layers. In that way we demonstrate the potential use of UV wavelengths of fully commercial laser sources as an alternative to standard backscribing process in device fabrication.
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RESUME : Dans de nombreux environnements professionnels, des travailleurs sont exposés à des bioaérosols, que ce soit des bactéries, champignons, virus ou fragments de microorganismes. Ces bioaérosols peuvent être responsables de maladies infectieuses (p.ex. légionellose), ou de maladies non infectieuses (touchant principalement les voies respiratoires). Cependant, pour une majorité des bioaérosols, les relations entre une exposition à une certaine dose et les effets sur la santé humaine sont peu connues. Ce manque de connaissances étant dû principalement à une absence de méthodes adéquates permettant de quantifier cette exposition. La real-time quantitative PCR (Q-PCR) est un outil basé sur la quantification du DNA dont le potentiel de quantification des bioaérosols dans des environnements professionnels n'a pas été exploré. Le but de ce travail est de développer une méthode de Q-PCR permettant de quantifier des bioaérosols - en particulier des bactéries - et d'appliquer ces techniques pour des mesures préventives sur les lieux de travail. Dans ce travail, la Q-PCR a été appliquée à 1a quantification de pathogènes, de groupes taxonomiques spécifiques et de la charge bactérienne totale dans des environnements de travail, stations d'épuration et élevages industriels de volailles. Nous avons montré que la Q-PCR : 1) est capable de quantifier des pathogènes difficilement cultivables si ceux-ci sont présents en concentration importante, 2) a le potentiel pour être un outil performant dans l'étude des communautés bactériennes présentes dans l'air d'environnements professionnels, 3) est aussi performante que le comptage total des bactéries par DAPI pour quantifier 1a charge bactérienne totale et est donc une alternative prometteuse aux techniques culture-dépendantes. La Q-PCR pourrait être utilisée afin d'établir des relations doses-réponses pour la charge bactérienne ; soit dans des populations de travailleurs hautement exposés (p.ex. les éleveurs de volailles), soit en exposant des cellules à des concentrations de bioaérosols mesurées par Q-PCR. ABSTRACT : Many workers are exposed to bioaerosols such as bacteria, fungi, viruses or fragments of microorganisms. These bioaerosols can be responsible of infectious (e.g. legionellosis) or non infectious diseases (mainly respiratory symptoms). However, for a majority of them, the relationship between exposure and effects on human health is not clearly established. This is mainly due to the lack of valid quantitative assessment methods. Real-time quantitative PCR (Q-PCR) is a tool based on the quantification of DNA, of which the potential for the quantification of bioaerosols in work environments has not yet been explored. The aim of this work was to develop a Q-PCR method permitting to quantify bioaerosols -mainly bacteria and to apply those techniques in occupational environments. In this work, Q-PCR was applied to the quantification of pathogens, of specific taxonomic groups and of the total bacterial load in two different occupational settings, namely wastewater treatment plants and poultry houses. We showed that Q-PCR : 1) is capable of quantifying difficult to cultivate pathogens; when they are present at high concentrations, 2) has the potential to be a useful tool for studying bacterial communities in the air of work environments, 3) is as efficient as epifluorescence for the quantification of total bacterial load, and is a promising alternative to the culture-dependent methods. Q-PCR could be used to establish doses-responses relationships for bacterial load, either in populations of highly exposed workers such as poultry farmers, or by exposing cells to concentrations of bioaerosols quantified with Q-PCR.
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The ternary systems Ruthenium-Silicon-Germanium, Ruthenium-Germanium-Tin and Ruthenium-Silicon-Tin were investigated by powder X-ray diffraction and electron microprobe analysis. Relations at 900 degrees C between solid phases are given and no ternary compound was found. Solubilities and evolution of lattice parameters have been correlated. Maximum mutual solubilities in the Si-Sn and Ge-Sn systems are given. (C) 1998 Elsevier Science S.A.
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Titre uniforme : [Sonates. Flûte, clavier. BWV 1030. Si mineur]
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Titre uniforme : [Sonates. Flûte, clavier. BWV 1030. Si mineur]
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El treball es centra principalment en el disseny de la instal·lació geotèrmica exterior i del terra radiant de l'interior. El disseny es basa en aconseguir el confort de calefacció i s'aprofita el fet de que s'utilitza un sistema reversible per aportar el màxim confort durant l'èpocade refrigeració. Es realitza un estudi de les possibles alternatives per a la instal·lació, també s'observaran els aparells i accessoris escollits per a la implantació de la instal·lació.
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In this work, we investigate heterojunction emitters deposited by Hot-Wire CVD on p-type crystalline silicon. The emitter structure consists of an n-doped film (20 nm) combined with a thin intrinsic hydrogenated amorphous silicon buffer layer (5 nm). The microstructure of these films has been studied by spectroscopic ellipsometry in the UV-visible range. These measurements reveal that the microstructure of the n-doped film is strongly influenced by the amorphous silicon buffer. The Quasy-Steady-State Photoconductance (QSS-PC) technique allows us to estimate implicit open-circuit voltages near 700 mV for heterojunction emitters on p-type (0.8 Ω·cm) FZ silicon wafers. Finally, 1 cm 2 heterojunction solar cells with 15.4% conversion efficiencies (total area) have been fabricated on flat p-type (14 Ω·cm) CZ silicon wafers with aluminum back-surface-field contact.