890 resultados para Amperometric biosensors


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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Há uma grande expectativa para o desenvolvimento de biossensores miniaturizados, que permitam análises mais eficientes e rápidas, em matrizes complexas como as encontradas: no ar, alimentos, águas residuais e em medicamentos. Recentemente, filmes poliméricos inteligentes ativados por estímulo externo têm atraído bastante interesse no desenvolvimento desses tais nanosensores para uso em sistemas químicos e bioquímicos. Estes materiais apresentam uma alta sensibilidade a alterações físicas ou químicas ocorridas na sua interface, e respondem seletivamente a essas mudanças para se adaptarem ao meio. Juntando-se as propriedades estímulo-responsivas desses polímeros com a alta seletividade de reações biológicas tem-se uma excelente combinação para a criação de nano biossensores. A esse tipo de sistema: interfaces/material biológico adota-se a nomenclatura biointerface. As biointerfaces são biossensores em potencial, e na preparação dos biossensores a tarefa mais complicada na sua preparação é o desenvolvimento de superfícies adequadas para o interfaceamento com material biológico, de maneira que a parte biológica possa atuar de forma sensível e estável. A primeira etapa consistiu na produção e caracterização dos polímeros escova (P2VP), os quais serão preparados pelo processo de deposição térmica. A caracterização dos mesmos foi realizada por imagens microscopia de força atômica (AFM), via eletroquímica e por transmissão de ressonância plasmônica de superfície. Na etapa posterior foi estudada a imobilização da glicose oxidase para a preparação do biossensor. O dispositivo fabricado foi empregado para a determinação direta de glicose. Desta forma, esperou-se obter uma metodologia de menor custo e tempo de análise. Logo, este estudo irá contribuir de forma significativa sobre os processos de montagem de biossensores a partir de compostos nanoestruturados. Foram utilizadas técnicas de ...

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Early detection assays play a key role in the successful treatment of most diseases. Redox capacitive biosensors were recently introduced as a potential electroanalytical assay platform for point-of-care applications but alternative surfaces (besides a mixed layer containing ferrocene and antibody receptive component) for recruiting important clinical biomarkers are still needed. Aiming to develop alternative receptive surfaces for this novel electrochemical biosensing platform, we synthesized a ferrocene redoxtagged peptide capable of self-assembly into metallic interfaces, a potentially useful biological surface functionalization for bedside diagnostic assays. As a proof of concept we used C-reactive protein (CRP), as a model biomarker, and compared the obtained results to those of previously reported capacitive assays. The redox-tagged peptide approach shows a limit of detection of 0.8 nmol L 1 (same as 94 ng mL 1 ) and a linear range (R2 ∼98%) with the logarithm of the concentration of the analyte comprising 0.5–10.0 nmol L 1 , within a clinical relevant range for CRP.

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A biomimetic sensor is proposed as a promising new analytical method for determination of norfloxacin (NF) in pharmaceuticals. The sensor was prepared by modifying a glassy carbon electrode surface with a Nafion® membrane doped with poly(copper phthalocyanine) complex [poly-CuPc]. Amperometric measurements carried out with the sensor under an applied potential of -0.05 V vs Ag|AgCl in 0.1 mol L-1 acetic acid containing 1.5 × 10-3 mol L-1 hydrogen peroxide showed a linear response range from 2.0 × 10-4 to 1.2 × 10-3 mol L-1. Selectivity and interference studies were also performed. A sensor response mechanism is proposed, based on the experimental evidence. Recovery studies were carried out using environmental samples, in order to evaluate the sensor’s potential for use with these sample classes. Finally, sensor performance was evaluated using analyses of commercial formulations.

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In this work, an electrode chemically modified with polypyrrole (PCME) was employed for determination of sulfate in ethanol fuel using a FIA system. The PCME was prepared by polymerization of pyrrole at a glassy carbon electrode by means of cyclic voltammetry technique. An analytical curve from 1.0 x 10−5 to 8.0 x 10−5 mol L−1 was obtained in flow injection system based on the PCME. An amperometric sensibility of 2.3 x 10−3 A mol−1 L and a detection limit of 2.5 x 10−6 mol L−1 were achieved. The proposed method was employed for determination of sulfate ions in commercial samples of ethanol fuel. The results were in good agreement with those obtained by the ionic chromatographic method.

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A novel nanostructured composite, azide copper octa (3-aminopropyl)octasilsesquioxane (ASCA) was incorporated into a graphite paste electrode and the electrochemical studies were conducted with cyclic voltammetry. The cyclic voltammogram of the modified graphite paste electrode with ASCA (GPE-ASCA), showed one redox couple with formal potential (E  ) = 0.30 V and an irreversible process at 1.1 V (vs Ag/AgCl; NaCl 1.0 mol L-1 ; v = 20 mV s-1 ). The redox couple with (E  ) = 0.30V presents an electrocatalytic response for determination of ascorbic acid. The modified electrode gives a linear range from 1.010-4 – 1.010-3 mol L-1 (r = 0.998) for the determination of ascorbic acid with detection limit of 6.910-5 mol L-1 and standard deviation of 2.3% for n = 3 . The amperometric sensitivity was 122.1 mA/mol L-1 for ascorbic acid. The application this electrode was tested and ascorbic acid in three commercial pharmaceutical product (Cebion, Cewin and Redoxon) have been determined.

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This work has main aim of is to propose the synthesis and characterization of nanostructured materials for oxidation of carbohydrates such as glucose, with non-enzymatic catalysis. The proposed pathway of synthesis of metal catalysts is the polyol method and techniques of physical characterization proposals for analysis of prepared catalyst pass through diffraction technique of ray-x (DRX), scanning electron microscopy (SEM) and Energy Dispersive Spectroscopy ray-x (EDX). Technical proposals for the electrochemical characterization of the synthesized catalysts are Cyclic voltammetry (CV) and differential pulse voltammetry (DPV). The prospects of this work are compared by the catalytic activity of the sensor designed with non-enzymatic sensors and biosensors also known in the literature

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Pós-graduação em Biotecnologia - IQ

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