4 resultados para Prata

em Repositório Institucional da Universidade de Aveiro - Portugal


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Esta tese descreve diversas estratégias de preparação assim como a caracterização de nanocompósitos com base em distintos biopolímeros. Em particular foi estudada a incorporação de nanopartículas (NPs) metálicas, nomeadamente de Ag, Cu e Au. Estes nanomateriais apresentam um potencial prático enorme em diversas áreas, no entanto foi investigada especificamente a sua aplicação como materiais antimicrobianos. No primeiro capítulo apresenta-se uma revisão bibliográfica, onde são realçados os principais tópicos discutidos ao longo da tese. Inicialmente apresenta-se uma contextualização deste trabalho sendo seguidamente apresentadas algumas considerações sobre nanocompósitos e o seu impacto tecnológico atual. Em seguida, descrevem-se as vantagens do uso de NPs como cargas nos materiais compósitos especificamente no caso de bionanocompósitos. Foi focado o uso da celulose como matriz uma vez que foi o composto “base” usado neste trabalho. Fez-se a descrição exaustiva das metodologias existentes na literatura para a preparação dos nanocompósitos celulósicos com diferentes NPs metálicas assim como das respetivas aplicações. Dentro das aplicações, foi dado especial destaque às propriedades antimicrobianas dos materiais preparados seja a nível da sua atividade antibacteriana ou antifúngica. Esta introdução privilegia o trabalho relacionado diretamente com os sistemas descritos nos capítulos subsequentes. No segundo capítulo apresentam-se os resultados obtidos para nanocompósitos de prata em matriz celulósica. Através do uso de metodologias, tais como a síntese in situ e a pós-deposição, foram preparados diversos materiais usando dois substratos celulósicos distintos nomeadamente a celulose vegetal e bacteriana. Estes nanocompósitos foram caracterizados em termos da sua morfologia e composição química, verificando-se a importância destas características na sua atividade antibacteriana. Foi verificado que nanocompósitos com teores de Ag de 5 x 10-4 (% m/m) são suficientes para obter atividade antibacteriana. A libertação de Ag(I) foi estudada em alguns destes materiais de modo a tentar perceber o mecanismo subjacente a este tipo de nanocompósitos. No terceiro capítulo é apresentado o estudo de NPs coloidais de Ag e Au como cargas para a preparação de nanocompósitos à base de quitosano nãomodificado e modificado quimicamente (derivado solúvel em água e derivado anfifílico). Foram preparados filmes finos de espessura de 9-14 μm, caracterizando-se as suas propriedades óticas e antibacterianas. As propriedades óticas foram ajustadas, quer pela variação do teor de NPs de Ag (0,3-3,9% m/m) ou pela utilização de amostras de NPs com distribuição de tamanho de partícula distinta. Foi investigada a atividade antibacteriana tanto para bactérias Gram-negativas (Klebsiella pneumoniae e Escherichia coli) como para Gram-positivas (Staphylococcus aureus). Para nanocompósitos preparados com o quitosano não modificado verificou-se uma dependência em função do teor de Ag. No caso do uso de derivados modificados, os materiais preparados mostraram uma eficiência superior, mesmo sem NPs de Ag. No quarto capítulo é apresentada a síntese e caracterização de nanocompósitos de pululano e NPs de Ag. Neste estudo é avaliada a atividade antifúngica dos filmes compósitos preparados contra o Aspergillus niger usando protocolos padrão. Estes materiais foram preparados na forma de filmes (66-74 μm de espessura) por evaporação de solvente da mistura de pululano e coloides de Ag. Foi observado o aumento da inibição do fungo na presença dos nanocompósitos, tendo sido pela primeira vez mostrado o efeito disruptivo destes materiais sobre os esporos do A. niger através da análise das imagens de SEM. Este efeito ocorre na presença dos filmes devido à presença das cargas de NPs de Ag dispersas no pululano. O desenvolvimento de materiais de papel com NPs de Cu é um desafio devido à propensão destas espécies em oxidar sob condições ambiente. No quinto capítulo é descrita pela primeira vez o estudo comparativo do crescimento e estabilidade de NPs de Cu em celulose vegetal e bacteriana. Para além disso foi avaliado o uso de nanoestruturas com diferentes dimensionalidades como cargas, nomeadamente nanoesferas e nanofios. Foi observado que o uso de nanofios aumenta a resistência à oxidação destes nanocompósitos para tempos de exposição ao ar mais prolongados. As matrizes celulósicas apresentam comportamento distinto no crescimento e/ou adsorção das NPs de Cu. A celulose bacteriana foi o substrato mais eficiente para retardar a oxidação das NPs. A atividade antibacteriana destes nanocompósitos foi avaliada. Ao longo desta dissertação são apresentados métodos distintos para a obtenção de nanocompósitos com base em biopolímeros e NPs metálicas. Estes estudos permitiram não só a preparação de novos nanocompósitos mas também compreender e otimizar os mecanismos subjacentes à sua preparação. Ao mesmo tempo, este trabalho contribuiu para a transferência de tecnologia e conhecimento entre a área da Nanotecnologia e a área dos materiais derivados de fontes renováveis. As propriedades apresentadas por estes nanomateriais mostraram a sua possível aplicação como novos materiais antimicrobianos, no entanto é possível antecipar futuras aplicações em outras áreas tecnológicas.

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Silver nanoparticles (AgNP) have been produced and applied in a variety of products ranging from personal care products to food package containers, clothing and medicine utilities. The antimicrobial function of AgNP makes it very useful to be applied for such purposes. Silver (Ag) is a non-essential metal for organisms, and it has been historically present in the environment at low concentrations. Those concentrations of silver increased in the last century due to the use of Ag in the photographic industry and lately are expected to increase due to the use of AgNPs in consumer products. The presence of AgNP in the aquatic environment may pose a risk for aquatic species, and the effects can vary from lethal to sublethal effects. Moreover, the contact of aquatic organisms with AgNP may not cause immediately the death of individuals but it can be accumulated inside the animals and consequently transferred within the food chain. Considering this, the objective of this work was to study the transfer of silver nanoparticles in comparison to silver ions, which was used as silver nitrate, within an aquatic food chain model. To achieve this goal, this study was divided into four steps: the toxicity assessment of AgNP and AgNO3 to aquatic test-species, the bioaccumulation assessment of AgNP and AgNO3 by Pseudokirchneriella subcapitata and Daphnia magna under different exposure scenarios, and finally the evaluation of the trophic transfer of Ag through an experimental design that included the goldfish Carassius auratus in a model trophic chain in which all the species were exposed to the worse-case scenario. We observed that the bioconcentration of Ag by P. subcapitata is mainly driven by ionic silver, and that algae cannot internalize these AgNPs, but it does internalizes dissolved Ag. Daphnia magna was exposed to AgNP and AgNO3 through different exposure routes: water, food and both water and food. The worse-case scenario for Daphnia Ag bioaccumulation was by the joint exposure of contaminated water and food, showing that Ag body burdens were higher for AgNPs than for AgNO3. Finally, by exposing C. auratus for 10 days through contaminated water and food (supplied as D. magna), with another 7 days of depuration phase, it was concluded that the 10 days of exposure were not enough for fish to reach a plateau on Ag internal concentration, and neither the 7 days of elimination were sufficient to cause total depuration of the accumulated Ag. Moreover, a higher concentration of Ag was found in the intestine of fish when compared with other organs, and the elimination rate constant of AgNP in the intestine was very low. Although a potential for trophic transfer of AgNP cannot be suggested based in the data acquired in this study, there is still a potential environmental risk for aquatic species.

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Over 11 million tons of nanomaterials (NMs) have been produced in 2012 and predictions point the increase in production. Despite predictions and extended usage via consumer products and industry, the understanding of the potential impact of these materials on the environment is virtually absent. The main aim of this thesis is to understand how a selected group of nanomaterials (metal based particles) may impact soil invertebrates, with special focus on the mechanisms of response. Since a case-by-case Environmental Risk Assessment (ERA) of all the emerging contaminants (particularly NMs) is impossible, among others due to time and cost reasons, to gain understanding on the mechanism of action and response is very important to reach a common paradigm. Understanding the modes of action provides predictive characters in cross particle extrapolation. Besides, it also provides insight for the production of new and sustainable materials. Overall, the effects of the selected NMs (Copper and Silver, Titanium and Zirconium oxides) and the respective salt forms, were investigated at the gene expression (using high-throughput tools, microarray and qPCR technology), biochemical (using enzymatic assays for analysis of oxidative stress markers) and organism (survival and reproduction as in OECD test guidelines) levels, this using standard soil species (Enchytraeus albidus, Enchytraeus crypticus, Eisenia fetida). Gene expression analysis provided valuable information on the mechanisms affected by each of the NMs. The gene expression profile highlighted a (nano)material signature and the effect of the duration of exposure. The functional analyses integrated with the biochemical and organism data, revealed a good understanding power. The biochemical parameters (oxidative stress related) were distinct across the materials and also influenced by duration of exposure and concentration. The standardized organismal responses differed the least between the various materials. The overall outcome is that, in this context of NMs effect assessment, gene expression and enzymatic assays introduced a very important knowledge gap, which could not had been achieved by the standard organismal effects alone. A reoccurring issue with some metal based NMs is the possible dissolution and subsequent release of ions that then causes toxicity e.g. Cu-NPs or Ag-NPs release Cu2+ or Ag+. The oxidation state of the particles was investigated, although this was not the focus of the thesis. The study of fate, e.g. dissolution of NPs, is also only in its beginning and the appropriate techniques are currently being developed. The results showed a specific nanoparticle effect. The UV exposure with titanium dioxide nanoparticles increased its effect.

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The present work aimed to explore the potential of new nanocomposites based on carbon nanostructures and metal nanoparticles for the detection of biomolecules through surface enhanced Raman scattering (SERS). In a first step, polyvinyl alcohol composites were prepared incorporating silver nanoparticles by two different reduction procedures. At first without introduction of carbon nanostructures. These composites showed good results for the SERS identification of nucleic acids. Next, the synthesis and characterization of graphene oxide was studied to be used in the preparation of silver and gold nanocomposites. The reduction of this nanomaterial with different chemical agents was explored, since its reduction degree may be a determinant factor for the application envisaged (biomolecules interaction). The preparation of the nanocomposites with silver and gold was performed with different reducing agents. The SERS activity of these new nanocomposites was then explored in the presence of different analytes, varying the experimental conditions for Raman spectra acquisition. It was interesting to verify that the silver containing nanocomposites presented the particularity to intensify the graphene D and G bands. It is also important to highlight that a new eco-friendly reducing agent was tested for the synthesis of the graphene oxide composites, an Eucalyptus Globulus extract. Other variable introduced was the preparation of gold nanostars synthesized with hydroxylamine in the presence of graphene oxide, which allowed the preparation of a new nanocomposite with SERS potential. Fibrous membranes were also prepared by electrospinning with the aim to prepare SERS supports with adequate topography and porosity for the formation of nanoparticles agglomerates for the creation of the so-called hot-spots and also to allow the penetration of the analyte molecules. The polymers polyvinyl alcohol and polyacrylonitrile were selected for electrospinning. Using this technique, electrospun mantles with silver and gold nanoparticles and nanocomposites were prepared. Several variables were studied, such as the introduction of the nano-fillers during the electrospinning process, later deposition of the nano-fillers on the simple electrospun polymeric fibres and surface functionalization of the simple polymeric membranes to link the nano-fillers. At last, the potentialities of using carbon nanotubes forests, produced by chemical vapor deposition and coated with gold film by sputtering, as new SERS substrates were explored. It was found that the SERS detection of DNA bases and ADN itself is possible using these substrates.