1000 resultados para 09-TIK-01


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Software Product Line (SPL) engineering aims at achieving efficient development of software products in a specific domain. New products are obtained via a process which entails creating a new configuration specifying the desired product’s features. This configuration must necessarily conform to a variability model, that describes the scope of the SPL, or else it is not viable. To ensure this, configuration tools are used that do not allow invalid configurations to be expressed. A different concern, however, is making sure that a product addresses the stakeholders’ needs as best as possible. The stakeholders may not be experts on the domain, so they may have unrealistic expectations. Also, the scope of the SPL is determined not only by the domain but also by limitations of the development platforms. It is therefore possible that the desired set of features goes beyond what is possible to currently create with the SPL. This means that configuration tools should provide support not only for creating valid products, but also for improving satisfaction of user concerns. We address this goal by providing a user-centric configuration process that offers suggestions during the configuration process, based on the use of soft constraints, and identifying and explaining potential conflicts that may arise. Suggestions help mitigating stakeholder uncertainty and poor domain knowledge, by helping them address well known and desirable domain-related concerns. On the other hand, automated conflict identification and explanation helps the stakeholders to understand the trade-offs required for realizing their vision, allowing informed resolution of conflicts. Additionally, we propose a prototype-based approach to configuration, that addresses the order-dependency issues by allowing the complete (or partial) specification of the features in a single step. A subsequent resolution process will then identify possible repairs, or trade-offs, that may be required for viabilization.

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Do presente trabalho resultou a submissão de um artigo, com o título UV Curing Adhesives for Conservation of Glass- Chemical and Mechanical Stability, para comunicação oral em conferência internacional intitulada Recent Advances in Glass and Ceramics Conservation, a ocorrer em Wroclaw, Polónia, de 25 a 29 de Maio de 2016, no âmbito do ICOM-CC Glass and Ceramics Working Group Interim Meeting.

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To find sustainable solutions for the production of energy, it is necessary to create photovoltaic technologies that make every photon count. To pursue this necessity, in the present work photodetectors of zinc oxide embedded with nano-structured materials, that significantly raise the conversion of solar energy to electric energy, were developed. The novelty of this work is on the development of processing methodologies in which all steps are in solution: quantum dots synthesis, passivation of their surface and sol-gel deposition. The quantum dot solutions with different capping agents were characterized by UVvisible absorption spectroscopy, spectrofluorimetry, dynamic light scattering and transmission electron microscopy. The obtained quantum dots have dimensions between 2 and 3nm. These particles were suspended in zinc acetate solutions and used to produce doped zinc oxide films with embedded quantum dots, whose electric response was tested. The produced nano-structured zinc oxide materials have a superior performance than the bulk, in terms of the produced photo-current. This indicates that an intermediate band material should have been produced that acts as a photovoltaic medium for solar cells. The results are currently being compiled in a scientific article, that is being prepared for possible submission to Energy and Environmental Science or Nanoscale journals.

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Materials engineering focuses on the assembly of materials´ properties to design new products with the best performance. By using sub-micrometer size materials in the production of composites, it is possible to obtain objects with properties that none of their compounds show individually. Once three-dimensional materials can be easily customized to obtain desired properties, much interest has been paid to nanostructured poly-mers in order to build biocompatible devices. Over the past years, the thermosensitive microgels have become more common in the framework of bio-materials with potential applicability in therapy and/or diagnostics. In addition, high aspect ratio biopolymers fibers have been produced using the cost-effective method called electrospinning. Taking advantage of both microgels and electrospun fibers, surfaces with enhanced functionalities can be obtained and, therefore employed in a wide range of applications. This dissertation reports on the confinement of stimuli-responsive microgels through the colloidal electro-spinning process. The process mainly depends on the composition, properties and patterning of the precur-sor materials within the polymer jet. Microgels as well as the electrospun non-woven mats were investigated to correlate the starting materials with the final morphology of the composite fibers. PNIPAAm and PNIPAAm/Chitosan thermosensitive microgels with different compositions were obtained via surfactant free emulsion polymerization (SFEP) and characterized in terms of chemical structure, morphology, thermal sta-bility, swelling properties and thermosensitivity. Finally, the colloidal electrospinning method was carried out from spinning solutions composed of the stable microgel dispersions (up to a concentration of about 35 wt. % microgels) and a polymer solution of PEO/water/ethanol mixture acting as fiber template solution. The confinement of microgels was confirmed by Scanning Electron Microscopy (SEM). The electrospinning process was statistically analysed providing the optimum set of parameters aimed to minimize the fiber diameter, which give rise to electrospun nanofibers of PNIPAAm microgels/PEO with a mean fiber diameter of 63 ± 25 nm.

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In this work, cellulose-based electro and ionic conductive composites were developed for application in cellulose based printed electronics. Electroconductive inks were successfully formulated for screen-printing using carbon fibers (CFs) and multi-walled carbon nanotubes (MWCNTs) as conductive functional material and cellulose derivatives working as binder. The formulated inks were used to fabricate conductive flexible and disposable electrodes on paper-based substrates. Interesting results were obtained after 10 printing passes and drying at RT of the ink with 10 % wt. of pristine CFs and 3% wt. of carboxymethyl cellulose (CMC), exhibiting a resistivity of 1.03 Ωcm and a resolution of 400 μm. Also, a resistivity of 0.57 Ωcm was obtained for only one printing pass using an ink based on 0.5 % wt. MWCNTs and 3 % wt. CMC. It was also demonstrated that ionic conductive cellulose matrix hydrogel can be used in electrolyte-gated transistors (EGTs). The electrolytes revealed a double layer capacitance of 12.10 μFcm-2 and ionic conductivity of 3.56x10-7 Scm-1. EGTs with a planar configuration, using sputtered GIZO as semiconducting layer, reached an ON/OFF ratio of 3.47x105, a VON of 0.2 V and a charge carrier mobility of 2.32 cm2V-1s-1.

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This work reports the development of field-effect transistors (FETs), whose channel is based on zinc oxide (ZnO) nanoparticles (NPs). Using screen-printing as the primary deposition technique, different inks were developed, where the semiconducting ink is based on a ZnO NPs dispersion in ethyl cellulose (EC). These inks were used to print electrolyte-gated transistors (EGTs) in a staggered-top gate structure on glass substrates, using a lithium-based polymeric electrolyte. In another approach, FETs with a staggered-bottom gate structure on paper were developed using a sol-gel method to functionalize the paper’s surface with ZnO NPs, using zinc acetate dihydrate (ZnC4H6O4·2H2O) and sodium hydroxide (NaOH) as precursors. In this case, the paper itself was used as dielectric. The various layers of the two devices were characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), Fourier Transform Infrared spectroscopy (FTIR), thermogravimetric and differential scanning calorimetric analyses (TG-DSC). Electrochemical impedance spectroscopy (EIS) was used in order to evaluate the electric double-layer (EDL) formation, in the case of the EGTs. The ZnO NPs EGTs present electrical modulation for annealing temperatures equal or superior to 300 ºC and in terms of electrical properties they showed On/Off ratios in the order of 103, saturation mobilities (μSat) of 1.49x10-1 cm2(Vs)-1 and transconductance (gm) of 10-5 S. On the other hand, the ZnO NPs FETs on paper exhibited On/Off ratios in the order of 102, μSat of 4.83x10- 3 cm2(Vs)-1and gm around 10-8 S.

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The quasi two-dimensional electron gas (q2DEG) hosted in the interface of an epitaxially grown lanthanum aluminate (LaAlO3) thin film with a TiO2-termi-nated strontium titanate (SrTiO3) substrate (001) has been massively studied in the last few years. The confinement of mobile electrons to within a few nanome-ters from the interface, superconductive behavior at low temperatures and elec-tron mobility exceeding 1000 cm2/(V.s) make this system an interesting candi-date to explore the physics of spin injection and transport. However, due to the critical thickness for conduction of 4 unit cells (uc) of LaAlO3, a high tunneling resistance hampers electrical access to the q2DEG, preventing proper injection of spin polarized current. Recently, our group found that depositing a thin overlayer of Co on LaAlO3 reduces the critical thickness, enabling conduction with only 1 uc of LaAlO3. Two scenarios arise to explain this phenomenon: a pinning of the Fermi level in the metal, inducing charge transfer in the SrTiO3; the creation of oxygen vacancies at the interface between LaAlO3 and the metal, leading to an n-type doping of the SrTiO3. In this dissertation, we will report on magnetotransport of metal/LaAlO3/SrTiO3 (metal: Ti, Ta, Co, Py, Au, Pt, Pd) heterostructures with 2 uc of LaAlO3 studied at low temperatures (2 K) and high magnetic fields (9 T). We have analyzed the transport properties of the gas, namely, the carrier concen-tration, mobility and magnetotransport regime and we will discuss the results in the light of the two scenarios mentioned above.

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Cancer remains as one of the top killing diseases in first world countries. It’s not a single, but a set of various diseases for which different treatment approaches have been taken over the years. Cancer immunotherapy comes as a “new” breath on cancer treatment, taking use of the patients’ immune system to induce anti-cancer responses. Dendritic Cell (DC) vaccines use the extraordinary capacity of DCs’ antigen presentation so that specific T cell responses may be generated against cancer. In this work, we report the ex vivo generation of DCs from precursors isolated from clinical-grade cryopreserved umbilical cord blood (UCB) samples. After the thawing protocol for cryopreserved samples was optimized, the generation of DCs from CD14+ monocytes, i.e., moDCs, or CD34+ hematopoietic stem cells (HSCs), i.e, CD34-derived DCs, was followed and their phenotype and function evaluated. Functional testing included the ability to respond to maturation stimuli (including enzymatic removal of surface sialic acids), Ovalbumin-FITC endocytic capacity, cytokine secretion and T cell priming ability. In order to evaluate the feasibility of using DCs derived from UCB precursors to induce immune responses, they were compared to peripheral blood (PB) moDCs. We observed an increased endocytosis capacity after moDCs were differentiated from monocyte precursors, but almost 10-fold lower than that of PB moDCs. Maturation markers were absent, low levels of inflammatory cytokines were seen and T cell stimulatory capacity was reduced. Sialidase enzymatic treatment was able to mature these cells, diminishing endocytosis and promoting higher T cell stimulation. CD34-derived DCs showed higher capacity for both maturation and endocytic capacity than moDCs. Although much more information was acquired from moDCs than from CD34-derived DCs, we conclude the last as probably the best suited for generating an immune response against cancer, but of course much more research has to be performed.

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Staphylococcus aureus is an important opportunistic pathogen that can cause a wide variety of diseases from mild to life-threatening conditions. S. aureus can colonize many parts of the human body but the anterior nares are the primary ecological niche. Its clinical importance is due to its ability to resist almost all classes of antibiotics available together with its large number of virulence factores. MRSA (Methicillin-Resistant S. aureus) strains are particularly important in the hospital settings, being the major cause of nosocomial infections worldwide. MRSA resistance to β-lactam antibiotics involves the acquisition of the exogenous mecA gene, part of the SCCmec cassette. Fast and reliable diagnostic techniques are needed to reduce the mortality and morbidity associated with MRSA infections, through the early identification of MRSA strains. The current identification techniques are time-consuming as they usually involves culturing steps, taking up to five days to determine the antibiotic resistance profile. Several amplification-based techniques have been developed to accelerate the diagnosis. The aim of this project was to develop an even faster methodology that bypasses the DNA amplification step. Gold-nanoprobes were developed and used to detect the presence of mecA gene in S. aureus genome, associated with resistance traits, for colorimetric assays based on non-crosslinking method. Our results showed that the mecA and mecA_V2 gold-nanoprobes were sensitive enough to discriminate the presence of mecA gene in PCR products and genomic DNA (gDNA) samples for target concentrations of 10 ng/μL and 20 ng/μL, respectively. As our main objective was to avoid the amplification step, we concluded that the best strategy for the early identification of MRSA infection relies on colorimetric assays based on non-crosslinking method with gDNA samples that can be extracted directly from blood samples.

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Sickle cell disease (SCD) is a genetic disorder with recessive transmission, caused by the mutation HBB:c.20A>T. It originates hemoglobin S that forms polymers inside the erythrocyte, upon deoxygenation, deforming it and ultimately leading to premature hemolysis. The disease presents with high heterogeneity of clinical manifestations, the most devastating of which, ischemic stroke, occurs in 11% of patients until 20 years of age. In this study, we tried to identify genetic modifiers of risk and episodes of stroke by studying 66 children with SCD, grouped according to the degree of cerebral vasculopathy (Stroke, Risk and Control). Association studies were performed between the three phenotypic groups and hematological and biochemical parameters of patients, as well as with 23 polymorphic regions in genes related to vascular cell adhesion (VCAM-1, THBS-1 and CD36), vascular tonus (NOS3 and ET-1) and inflammation (TNF-α and HMOX-1). Relevant data was collected from patient’s medical records. Known genetic modulators of SCD (beta-globin cluster haplotype and HBA and BCL11A genotypes) and putative genetic modifiers of cerebral vasculopathy were characterized. Differences in their distribution among groups were assessed. VCAM-1 rs1409419 allele C and NOS3 rs207044 allele C were associated to stroke events, while VCAM-1 rs1409419 allele T was found to be protective. Alleles 4a and 4b of NOS3 27 bp VNTR appeared to be respectively associated to stroke risk and protection. HMOX-1 longer STRs seemed to predispose to stroke. Higher hemoglobin F levels were found in Control group, as a result of Senegal haplotype or of BCL11A rs11886868 allele T, and higher lactate dehydrogenase levels, marker of hemolysis, were found in Risk group. Molecular mechanisms underlying the modifier functions of the relevant genetic variants are discussed.

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Este estudo tem como objetivo construir um modelo estocástico de alta resolução da morfologia e dos teores em metal, do depósito mineral do Zambujal, Mina de Neves-Corvo. O depósito do Zambujal é um corpo vulcanogénico que se localiza no setor Português, na parte mais a Sul da Faixa Piritosa Ibérica, com sulfuretos maciços no topo e fissurais na base. Para construir um modelo estocástico deste depósito, onde os teores em metal evidenciam zonamento, é importante ter em conta a proporção local de sulfuretos na matriz rochosa. Como esta variável não é quantificada em laboratório, propõe-se a utilização da densidade das amostras como um indicador indireto da proporção de minérios na matriz rochosa. Conhecida esta variável, a modelação dos teores em metal pode ser feita para os chamados teores relativos (teores em metal na fração de sulfuretos). As principais etapas da metodologia proposta são: (a) para cada amostra analisada no laboratório, estimação de soluções para a variável proporção de sulfuretos na matriz rochosa ????(????), tendo em conta a paragénese principal do depósito, os teores e a densidade da rocha; (b) construção de um modelo morfológico 3D de baixa resolução com duas regiões, minérios maciços e minérios fissurais, por digitalização de limites em perfis, interpolação de superfícies e conversão para o modelo de blocos do depósito; (c) construção de um modelo morfológico 3D de alta resolução para todo o depósito da variável ????(????) por Simulação Sequencial Direta (SSD), tendo como informação condicionante os histogramas regionais de ????(????) para minérios maciços e minérios fissurais e as soluções obtidas em (a) para ????(????) na localização das sondagens; (d) SSD dos teores relativos em cobre, zinco e prata; (e) discussão dos resultados e quantificação de recursos. Os resultados foram validados por comparação com os equivalentes obtidos numa estimação por krigagem normal dos teores em metal e mostraram ser da mesma ordem de grandeza. O conjunto de imagens simuladas das variáveis ????(????) e teores permite quantificar a incerteza do conhecimento do depósito relativamente à informação disponível.

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Na região de Nisa, concelho de Portalegre, situa-se um dos maiores e mais relevantes jazigos de urânio alguma vez descoberto em território nacional. Trata-se de um jazigo ainda inexplorado que encerra um potencial estimado em cerca de 32 milhões de toneladas de minério tal qual. Este jazigo ocorre à superfície e encontra-se em contexto metassedimentar embutido em xistos mosqueados, pertencentes ao Grupo das Beiras, nas proximidades do contacto com o granito do Maciço de Nisa. Este trabalho tem como objetivo estudar de forma qualitativa e quantitativa a dispersão geoquímica provocada por processos naturais de erosão e de transporte hidrogravítico na envolvente à anomalia geoquímica natural localmente induzida por este jazigo. Para o efeito estabeleceu-se uma metodologia com as seguintes etapas principais: (1) georreferenciação em SIG de elementos de cartografia; (2) planeamento e elaboração do plano de amostragem; (3) recolha e tratamento de amostras de solos e sedimentos; (4) ensaios não destrutivos de medição de radiação gama por SPP2 e determinações analíticas por XRF; (5) análise exploratória e tratamento estatístico de dados e análise espacial; (6) análise de resultados; (7) definição de teores geoquímicos de fundo local. As amostras de sedimentos foram retiradas de uma ribeira que intersecta a área da anomalia e alimenta uma barragem local de enrocamento; as amostras de solos foram retiradas de linhas de amostragem perpendiculares à ribeira. As determinações analíticas registaram os teores em diversos metais, como o urânio, crómio, molibdénio, nióbio, vanádio e zinco e do semimetal arsénio. Com exceção do zinco, os resultados evidenciam que as concentrações naturais nestes metais no local onde se localiza uma importante jazida de minérios de urânio são muito elevados, e quando comparados com os valores standard da norma Canadiana mostram poder existir risco para a saúde se não forem limitados os usos do local.

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Na Zona Industrial e Logística de Sines (ZILS) estão instaladas empresas e indústrias que interferem na quantidade e qualidade da água subterrânea de aquíferos da região. Estas utilizam e libertam poluentes que, consequentemente, quando não cumpridas as normas de segurança, podem causar impactes no ambiente. A ZILS situa-se no Sistema Aquífero de Sines, na Massa de Água 032-Sines, este é constituído por dois aquíferos, um superficial detrítico livre e outro carbonatado profundo confinado. Apesar de se encontrarem separados em grande parte da sua extensão, na região sul, estes aquíferos encontram-se em conexão hidráulica. Esta ocorre a este da falha da Maria das Moitas onde, a partir da qual e até ao limite com o Paleozóico, não foi reconhecida a unidade argilosa do Miocénico, aumentado assim a vulnerabilidade do sistema e a pertinente otimização da rede de monitorização. Para a realização de um estudo mais aprofundado e avaliação dos efeitos sobre as águas subterrâneas na área de estudo, definiu-se uma metodologia de trabalho que engloba 4 etapas: (i) revisão bibliográfica; (ii) recolha de dados geológicos e hidrogeológicos dos arquivos da aicep Global Parques, S.A., SNIRH e LNEG; (iii) tratamento e análise dos dados obtidos em ArcGIS e traçado de perfis geológicos interpretativos; (iv) realização do modelo geológico e hidrogeológico e respetiva adequação da rede de monitorização. O modelo hidrogeológico concebido mostra que o escoamento no Sistema Aquífero de Sines se processa, predominantemente, de E para W a partir do limite situado no contacto por falha entre as unidades do Paleozóico e Meso-Cenozóico com orientação, quase perpendicular, à ribeira dos Moinhos. A este deste alinhamento é assinalada a presença de um aquífero fissurado sob as areias do Plio-Plistocénico localizado na Formação de Mira. O escoamento neste aquífero faz-se de NE para SW, em direção ao oceano, para a praia de S. Torpes.

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A procura de novos materiais aumenta dia após dia, obrigando o Homem a procurar e encontrar novas soluções, tendo sempre como critério decisivo, uma exploração económica e ambiental sustentável. É neste âmbito que surge o tema desta dissertação. O objetivo é tirar um maior proveito do sienito nefelínico de Monchique (Portugal), à semelhança de países como a Rússia, Canadá e Noruega, que utilizam esta rocha a nível industrial. Neste trabalho, a investigação foi no sentido de estudar o potencial da rocha portuguesa para a indústria cerâmica. O elevado teor de alumina e álcalis que o sienito nefelínico apresenta na sua constituição, serve de substituto aos minerais atualmente utilizados neste sector, os feldspatos isolados. A alumina serve de estabilizador, promovendo a durabilidade dos materiais pelo aumento da resistência e o conteúdo em álcalis funciona como fundente, diminuindo a temperatura de queima. Desta forma, o Maciço de Monchique ganha uma nova importância económica, sendo uma mais-valia para o país. Para tal, elaboraram-se provetes cerâmicos constituídos por 0, 20, 40 e 60% em peso de sienito nefelínico em mistura com argila. Posteriormente, sujeitaram-se os provetes a três temperaturas diferentes, 900 °C, 1000 °C e 1100 °C e submeteram-se cada um deles a ensaios físicos e mecânicos, para determinar o potencial da incorporação do sienito de Monchique na indústria cerâmica. Os resultados indicaram que a adição de sienito nefelínico melhora as propriedades físicas da argila. Relativamente às propriedades mecânicas, o ensaio de resistência à flexão indicou que, dos vários teores testados, o mais positivo encontra-se na percentagem de 20% de sienito nefelínico, apresentando valores próximos da argila pura utilizada como referência.