62 resultados para Optical sensor


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Ao longo deste trabalho é apresentada a caracterização optoelectrónica de uma estrutura semicondutora empilhada de fotodíodos PIN (Positive-Intrinsic-Negative), baseados em silício amorfo hidrogenado (a-Si:H - Hydrogenated Amorphous Silicon) e siliceto de carbono amorfo hi-drogenado (a-SiC:H - Hydrogenated Amorphous Silicon Carbide), em que ambos funcionam como filtros ópticos na zona visível do espectro electromagnético e cuja sensibilidade espectral na região do visível é modulada pelo sinal de tensão eléctrico aplicado e pela presença de polarização óptica adicional (radiação de fundo). Pretende-se utilizar a característica de sensor de cor destes dispositivos semicondutores para realizar a demultiplexagem de sinais ópticos e desenvolver um algoritmo que permita fazer o reco-nhecimento autónomo do sinal transmitido em cada canal, tendo em vista a utilização de vários ca-nais para a transmissão de sinais a curta distância. A transmissão destes sinais deverá ser suportada no meio de transmissão fibra óptica, que constituirá uma importante mais-valia na optimização do sistema WDM (Wavelength Division Mul-tiplexing), permitindo optimizar a transmissão de sinais. Pelas suas capacidades intrínsecas, as fi-bras ópticas de plástico (POF - Plastic Optical Fibers) são uma solução adequada para a transmis-são de sinais no domínio visível do espectro electromagnético a curtas distâncias. Foi realizada uma sucinta caracterização optoelectrónica da estrutura semicondutora sob diferentes condições de iluminação, variando o comprimento de onda e a iluminação de fundo que influencia a resposta espectral do dispositivo semicondutor, variando as cores dos fundos inciden-tes, variando o lado incidente do fundo sobre a estrutura semicondutora, variando a intensidade des-ses mesmos fundos incidentes e também variando a frequência do sinal de dados. Para a transmissão dos sinais de dados foram utilizados três dispositivos LED (Light-Emitting Diode) com as cores vermelho (626nm), verde (525nm) e azul (470nm) a emitir os respec-tivos sinais de dados sobre a estrutura semicondutora e onde foram aplicadas diversas configurações de radiação de fundo incidente, variando as cores dos fundos incidentes, variando o lado incidente do fundo sobre a estrutura semicondutora e variando também a intensidade desses mesmos fundos incidentes. Com base nos resultados obtidos ao longo deste trabalho, foi possível aferir sobre a influên-cia da presença da radiação de fundo aplicada ao dispositivo, usando diferentes sequências de dados transmitidos nos vários canais. Sob polarização inversa, e com a aplicação de um fundo incidente no lado frontal da estrutura semicondutora os valores de fotocorrente gerada são amplificados face aos valores no escuro, sendo que os valores mais altos foram encontrados com a aplicação do fundo de cor violeta, contribuindo para tal, o facto do sinal do canal vermelho e canal verde serem bastan-te amplificados com a aplicação deste fundo. Por outro lado, com a aplicação dos fundos incidentes no lado posterior da estrutura semi-condutora, o sinal gerado não é amplificado com nenhuma cor, no entanto, a aplicação do fundo de cor azul proporciona a distinção do sinal proveniente do canal azul e do canal vermelho, sendo que quando está presente um sinal do canal vermelho, o sinal é fortemente atenuado e com a presença do sinal do canal azul o sinal gerado aproxima-se mais do valor de fotocorrente gerada com a estru-tura no escuro. O algoritmo implementado ao longo deste trabalho, permite efectuar o reconhecimento au-tónomo da informação transmitida por cada canal através da leitura do sinal da fotocorrente forne-cida pelo dispositivo quando sujeito a uma radiação de fundo incidente violeta no lado frontal e uma radiação de fundo incidente azul no lado posterior. Este algoritmo para a descodificação dos sinais WDM utiliza uma aplicação gráfica desenvolvida em Matlab que com base em cálculos e compara-ções de sinal permite determinar a sequência de sinal dos três canais ópticos incidentes. O trabalho proposto nesta tese é um módulo que se enquadra no desenvolvimento de um sistema integrado de comunicação óptica a curta distância, que tem sido alvo de estudo e que resulta das conclusões de trabalhos anteriores, em que este dispositivo e outros de configuração idêntica foram analisados, de forma a explorar a sua utilização na implementação da tecnologia WDM den-tro do domínio do espectro visível e utilizando as POF como meio de transmissão.

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A presente dissertação tem como finalidade apresentar uma investigação teórica e experimental sobre um sensor polarimétrico, portátil e de baixo custo, baseado num cristal líquido para a medição da concentração de glicose existente numa amostra. Devido ao crescente número de pessoas que sofrem de Diabetes, existe grande interesse em desenvolver sensores portáteis que permitam medir a concentração de glicose de forma rápida, precisa e indolor. Dos vários métodos não invasivos existentes para a medição de concentração de glicose, o método utilizado tem como base a medição da rotação da polarização da luz. Recentemente os sensores polarimétricos baseados em cristais líquidos, têm adquirido grande ênfase devido às suas características únicas que, em comparação com outros moduladores electroópticos, funcionam com tensões mais baixas, apresentam menor consumo energético e maior ângulo de rotação. No entanto também existem diversas desvantagens, nomeadamente a falta de documentação sobre a realização de testes e resultados obtidos em sensores polarimétricos. Têm como desvantagem adicional o facto do comportamento do polarímetro ser fortemente dependente do tipo de cristal líquido e da tensão a este aplicado. A presente dissertação descreve o desenvolvimento de um sensor polarimétrico que inclui a componente óptica, a componente electrónica de detecção e acondicionamento do sinal, a comunicação sem fios com um PC, e, por fim, a componente de análise e interface com o utilizador. Neste sensor polarimétrico poderão ser efectuadas leituras de temperatura das amostras para efeitos de correcção do cálculo da concentração da glicose. O dispositivo permite ainda a gravação dos dados obtidos e identificação dos mesmos. Os resultados obtidos demonstram que o dispositivo é capaz de medir concentrações com 10mg/ml de glicose, com uma percentagem de erro de 15%, para uma amostra com um percurso óptico de apenas 1 cm.

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Toxic amides, such as acrylamide, are potentially harmful to Human health, so there is great interest in the fabrication of compact and economical devices to measure their concentration in food products and effluents. The CHEmically Modified Field Effect Transistor (CHEMFET) based onamorphous silicon technology is a candidate for this type of application due to its low fabrication cost. In this article we have used a semi-empirical modelof the device to predict its performance in a solution of interfering ions. The actual semiconductor unit of the sensor was fabricated by the PECVD technique in the top gate configuration. The CHEMFET simulation was performed based on the experimental current voltage curves of the semiconductor unit and on an empirical model of the polymeric membrane. Results presented here are useful for selection and design of CHEMFET membranes and provide an idea of the limitations of the amorphous CHEMFET device. In addition to the economical advantage, the small size of this prototype means it is appropriate for in situ operation and integration in a sensor array.

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The characteristics of tunable wavelength filters based on a-SiC:H multilayered stacked pin cells are studied both theoretically and experimentally. The optical transducers were produced by PECVD and tested for a proper fine tuning of the cyan and yellow fluorescent proteins emission. The active device consists of a p-i'(a-SiC:H)-n/p-i(a-Si:H)-n heterostructures sandwiched between two transparent contacts. Experimental data on spectral response analysis, current-voltage characteristics and color and transmission rate discrimination are reported. Cyan and yellow fluorescent input channels were transmitted together, each one with a specific transmission rate and different intensities. The multiplexed optical signal was analyzed by reading out, under positive and negative applied voltages, the generated photocurrents. Results show that the optimized optical transducer has the capability of combining the transient fluorescent signals onto a single output signal without losing any specificity (color and intensity). It acts as a voltage controlled optical filter: when the applied voltages are chosen appropriately the transducer can select separately the cyan and yellow channel emissions (wavelength and frequency) and also to quantify their relative intensities. A theoretical analysis supported by a numerical simulation is presented.

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In this paper we present results on the use of a multilayered a-SiC:H heterostructure as a wavelength-division demultiplexing device for the visible light spectrum. The proposed device is composed of two stacked p-i-n photodiodes with intrinsic absorber regions adjusted to short and long wavelength absorption and carrier collection. An optoelectronic characterisation of the device was performed in the visible spectrum. Demonstration of the device functionality for WDM applications was done with three different input channels covering the long, the medium and the short wavelengths in the visible range. The recovery of the input channels is explained using the photocurrent spectral dependence on the applied voltage. An electrical model of the WDM device is proposed and supported by the solution of the respective circuit equations. Short range optical communications constitute the major application field, however other applications are also foreseen.

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This paper reports on optical filters based on a-SiC:H tandem pi'n/pin heterostructures. The spectral sensitivity is analyzed. Steady state optical bias with different wavelengths are applied from each front and back sides and the photocurrent is measured. Results show that it is possible to control the sensitivity of the device and to tune a specific wavelength range by combining radiations with complementary light penetration depths. The transfer characteristics effects due to changes in the front and back optical bias wavelength are discussed. Depending on the wavelength of the external background and irradiation side, the device acts either as a short- or a long-pass band filter or as a band-stop filter. The output waveform presents a nonlinear amplitude-dependent response to the wavelengths of the input channels.

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Combined tunable WDM converters based on SiC multilayer photonic active filters are analyzed. The operation combines the properties of active long-pass and short-pass wavelength filter sections into a capacitive active band-pass filter. The sensor element is a multilayered heterostructure produced by PE-CVD. The configuration includes two stacked SiC p-i-n structures sandwiched between two transparent contacts. Transfer function characteristics are studied both theoretically and experimentally. Results show that optical bias activated photonic device combines the demultiplexing operation with the simultaneous photodetection and self amplification of an optical signal acting the device as an integrated photonic filter in the visible range. Depending on the wavelength of the external background and irradiation side, the device acts either as a short- or a long-pass band filter or as a band-stop filter. The output waveform presents a nonlinear amplitude-dependent response to the wavelengths of the input channels. A numerical simulation and two building-blocks active circuit is presented and gives insight into the physics of the device.

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Amorphous SiC tandem heterostructures are used to filter a specific band, in the visible range. Experimental and simulated results are compared to validate the use of SiC multilayered structures in applications where gain compensation is needed or to attenuate unwanted wavelengths. Spectral response data acquired under different frequencies, optical wavelength control and side irradiations are analyzed. Transfer function characteristics are discussed. Color pulsed communication channels are transmitted together and the output signal analyzed under different background conditions. Results show that under controlled wavelength backgrounds, the device sensitivity is enhanced in a precise wavelength range and quenched in the others, tuning or suppressing a specific band. Depending on the background wavelength and irradiation side, the device acts either as a long-, a short-, or a band-rejection pass filter. An optoelectronic model supports the experimental results and gives insight on the physics of the device.

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Optical fiber microwires (OFMs) are nonlinear optical waveguides that support several spatial modes. The multimodal generalized nonlinear Schrodinger equation (MM-GNLSE) is deduced taking into account the linear and nonlinear modal coupling. A detailed theoretical description of four-wave mixing (FWM) considering the modal coupling is developed. Both, the intramode and the intermode phase-matching conditions is calculated for an optical microwire in a strong guiding regime. Finally, the FWM dynamics is studied and the amplitude evolution of the pump beams, the signal and the idler are analyzed.

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Multilayered heterostructures based on embedded a-Si:H and a-SiC:H p-i-n filters are analyzed from differential voltage design perspective using short- and long-pass filters. The transfer functions characteristics are presented. A numerical simulation is presented to explain the filtering properties of the photonic devices. Several monochromatic pulsed lights, separately (input channels) or in a polychromatic mixture (multiplexed signal) at different bit rates, illuminated the device. Steady-state optical bias is superimposed from the front and the back side. Results show that depending on the wavelength of the external background and impinging side, the device acts either as a short- or a long-pass band filter or as a band-stop filter. Particular attention is given to the amplification coefficient weights, which allow to take into account the wavelength background effects when a band or frequency needs to be filtered or the gate switch, in which optical active filter gates are used to select and filter input signals to specific output ports in wavelength division multiplexing (WDM) communication systems. This nonlinearity provides the possibility for selective removal or addition of wavelengths. A truth table of an encoder that performs 8-to-1 MUX function exemplifies the optoelectronic conversion.

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Combined tunable WDM converters based on SiC multilayer photonic active filters are analyzed. The operation combines the properties of active long-pass and short-pass wavelength filter sections into a capacitive active band-pass filter. The sensor element is a multilayered heterostructure produced by PE-CVD. The configuration includes two stacked SiC p-i-n structures sandwiched between two transparent contacts. Transfer function characteristics are studied both theoretically and experimentally. Results show that optical bias activated photonic device combines the demultiplexing operation with the simultaneous photodetection and self amplification of an optical signal acting the device as an integrated photonic filter in the visible range. Depending on the wavelength of the external background and irradiation side, the device acts either as a short- or a long-pass band filter or as a band-stop filter. The output waveform presents a nonlinear amplitude-dependent response to the wavelengths of the input channels. A numerical simulation and a two building-blocks active circuit are presented and give insight into the physics of the device. (c) 2013 Elsevier B.V. All rights reserved.

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In this paper we present results on the use of a semiconductor heterostructure based on a-SiC:H as a wavelength-division demultiplexer for the visible light spectrum. The proposed device is composed of two stacked p-i-n photodiodes with intrinsic absorber regions adjusted to short and long wavelength absorption and carrier collection. An optoelectronic characterisation of the device was performed in the visible spectrum. Demonstration of the device functionality for WDM applications was done with three different input channels covering the long, the medium and the short wavelengths in the visible range. The recovery of the input channels is explained using the photocurrent spectral dependence on the applied voltage. An electrical model of the WDM device is proposed and supported by the solution of the respective circuit equations. Short range optical communications constitute the major application field however other applications are foreseen. (C) 2010 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

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Red, green and blue optical signals were directed to an a-SiC:H multilayered device, each one with a specific transmission rate. The combined optical signal was analyzed by reading out, under different applied voltages, the generated photocurrent. Results show that when a chromatic time dependent wavelength combination with different transmission rates irradiates the multilayered structure, the device operates as a tunable wavelength filter and can be used in wavelength division multiplexing systems for short range communications. An application to fluorescent proteins detection is presented. (C) 2010 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim

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It is presented in this paper a study on the photo-electronic properties of multi layer a-Si: H/a-SiC: H p-i-n-i-p structures. This study is aimed to give an insight into the internal electrical characteristics of such a structure in thermal equilibrium, under applied Was and under different illumination condition. Taking advantage of this insight it is possible to establish a relation among-the electrical behavior of the structure the structure geometry (i.e. thickness of the light absorbing intrinsic layers and of the internal n-layer) and the composition of the layers (i.e. optical bandgap controlled through percentage of carbon dilution in the a-Si1-xCx: H layers). Showing an optical gain for low incident light power controllable by means of externally applied bias or structure composition, these structures are quite attractive for photo-sensing device applications, like color sensors and large area color image detector. An analysis based on numerical ASCA simulations is presented for describing the behavior of different configurations of the device and compared with experimental measurements (spectral response and current-voltage characteristic). (c) 2008 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

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In this paper we present results on the use of a multilayered a-SiC:H heterostructure as a wavelength-division demultiplexing device (WDM) for the visible light spectrum. The WDM device is a glass/ITO/a-SiC:H (p-i-n)/ a-SiC:H(-p) /Si:H(-i)/SiC:H (-n)/ITO heterostructure in which the generated photocurrent at different values of the applied bias can be assigned to the different optical signals. The device was characterized through spectral response measurements, under different electrical bias. Demonstration of the device functionality for WDM applications was done with three different input channels covering wavelengths within the visible range. The recovery of the input channels is explained using the photocurrent spectral dependence on the applied voltage. The influence of the optical power density was also analysed. An electrical model, supported by a numerical simulation explains the device operation. Short range optical communications constitute the major application field, however other applications are also foreseen.