5 resultados para CW

em Universidad Politécnica de Madrid


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This paper presents a W-band high-resolution radar sensor for short-range applications. Low-cost technologies have been properly selected in order to implement a versatile and easily scalable radar system. A large operational bandwidth of 9 GHz, required for obtaining high-range resolution, is attained by means of a frequency multiplication-based architecture. The system characterization to identify the performance-limiting stages and the subsequent design optimization are presented. The assessment of system performance for several representative applications has been carried out.

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Crystallization and grain growth technique of thin film silicon are among the most promising methods for improving efficiency and lowering cost of solar cells. A major advantage of laser crystallization and annealing over conventional heating methods is its ability to limit rapid heating and cooling to thin surface layers. Laser energy is used to heat the amorphous silicon thin film, melting it and changing the microstructure to polycrystalline silicon (poly-Si) as it cools. Depending on the laser density, the vaporization temperature can be reached at the center of the irradiated area. In these cases ablation effects are expected and the annealing process becomes ineffective. The heating process in the a-Si thin film is governed by the general heat transfer equation. The two dimensional non-linear heat transfer equation with a moving heat source is solve numerically using the finite element method (FEM), particularly COMSOL Multiphysics. The numerical model help to establish the density and the process speed range needed to assure the melting and crystallization without damage or ablation of the silicon surface. The samples of a-Si obtained by physical vapour deposition were irradiated with a cw-green laser source (Millennia Prime from Newport-Spectra) that delivers up to 15 W of average power. The morphology of the irradiated area was characterized by confocal laser scanning microscopy (Leica DCM3D) and Scanning Electron Microscopy (SEM Hitachi 3000N). The structural properties were studied by micro-Raman spectroscopy (Renishaw, inVia Raman microscope).

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In this paper, we report on the progresses of the BRITESPACE Consortium in order to achieve space-borne LIDAR measurements of atmospheric carbon dioxide concentration based on an all semiconductor laser source at 1.57 ?m. The complete design of the proposed RM-CW IPDA LIDAR has been presented and described in detail. Complete descriptions of the laser module and the FSU have been presented. Two bended MOPAs, emitting at the sounding frequency of the on- and off- IPDA channels, have been proposed as the transmitter optical sources with the required high brightness. Experimental results on the bended MOPAs have been presented showing a high spectral purity and promising expectations on the high output power requirements. Finally, the RM-CW approach has been modelled and an estimation of the expected SNR for the entire system is presented. Preliminary results indicate that a CO2 retrieval precision of 1.5 ppm could be achieved with an average output power of 2 W for each channel.

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An advantage of laser crystallization over conventional heating methods is its ability to limit rapid heating and cooling to thin surface layers. Laser energy is used to heat the a-Si thin film to change the microstructure to poly-Si. Thin film samples of a-Si were irradiated with a CW-green laser source. Laser irradiated spots were produced by using different laser powers and irradiation times. These parameters are identified as key variables in the crystallization process. The power threshold for crystallization is reduced as the irradiation time is increased. When this threshold is reached the crystalline fraction increases lineally with power for each irradiation time. The experimental results are analysed with the aid of a numerical thermal model and the presence of two crystallization mechanisms are observed: one due to melting and the other due to solid phase transformation.

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Los sistemas LIDAR (Light Detection and Ranging) permiten medir la distancia entre dos puntos, evaluando el tiempo que tarda una señal óptica (generalmente procedente de un Láser) en hacer un recorrido de ida y vuelta entre dichos puntos. En los sistemas CW-RM (Continuous Wave - Random Modulated) esta evaluación se hace calculando la correlación entre la señal emitida (pseudoaleatoria) y la recibida (cuyo retardo depender de la distancia entre los puntos). Este sistema CW-RM tiene la ventaja sobre los TOF (Time Of Flight) de que funcionan bien ún con señales recibidas de reducida relación señal a ruido. La precisión de la medida, depende, entre otros parámetros, del tiempo de bit de la secuencia pseudoaleatoria y de la frecuencia de muestreo del sistema que capta las señales y posteriormente las correla. El objetivo del presente trabajo es realizar un sistema de gran precisión, utilizando señales pseudoaleatorias de tiempo de bit de centenas de pico segundo y frecuencia de muestreo de Gs/s, para lo que deberemos utilizar equipamiento disponible en laboratorio, as mismo deberemos seleccionar y con guiar los láseres emisores para que puedan trabajar a estas velocidades. La primera etapa del proyecto será el conocimiento del instrumental de laboratorio que vamos a utilizar en el set-up. La segunda etapa será la realización de un primer montaje en el que se conectará emisor y receptor a través de una fibra óptica de longitud conocida. Esto nos permitir á el desarrollo de algoritmos para extraer información de la medida y para una calibración del instrumental para posteriores medidas. La tercera etapa es el diseño definitivo con emisor al aire para el que tendremos que ajustar todos los elementos ópticos del sistema, de modo que se pueda detectar la luz reflejada y además se pueda reducir parte de la luz de background.