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Low-cost, fiber-optic hydrogen gas detector using guided-wave, surface plasmon resonance in chemochromic thin films

机译:低成本,光纤氢气探测器使用导向波,化学多种薄膜中的表面等离子体共振

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Low-cost, hydrogen-gas-leak detectors are needed for many hydrogen applications, such as hydrogen-fueled vehicles where several detectors may be required in different locations on each vehicle. A fiber-optic leak detector could be inherently safer than conventional detectors, because it would remove all detector electronics from the vicinity of potential leaks. It would also provide freedom from electromagnetic interference, a serious problem in fuel-cell-powered electric vehicles. This paper describes the design of a fiber-optic, surface-plasmon-resonance hydrogen detector, and efforts to make it more sensitive, selective, and durable. Chemochromic materials, such as tungsten oxide and certain Lanthanide hydrides, can reversibly react with hydrogen in air while exhibiting significant changes in their optical properties. Thin films of these materials applied to a sensor at the end of an optical fiber have been used to detect low concentrations of hydrogen gas in air. The coatings include a thin silver layer in which the surface plasmon is generated, a thin film of the chemochromic material, and a catalytic layer of palladium that facilitates the reaction with hydrogen. The film thickness is chosen to produce a guided-surface plasmon wave along the interface between the silver and the chemochromic material. A dichroic beam-splitter separates the reflected spectrum into a portion near the resonance and a portion away from the resonance, and directs these two portions to two separate photodiodes. The electronic ratio of these two signals cancels most of the fiber transmission noise and provides a stable hydrogen signal.
机译:对于许多氢应用,例如氢气燃料车辆,例如,在每辆车上的不同位置需要几个探测器,需要低成本,氢气泄漏探测器。光纤泄漏检测器可能比传统的探测器固有地更安全,因为它将从潜在泄漏附近移除所有探测器电子器件。它还将提供免于电磁干扰的自由,燃料电池供电的电动车中的严重问题。本文介绍了光纤,表面等离子体共振氢检测器的设计,并努力使其更敏感,选择性和耐用。化学多变量材料,例如氧化钨和某些镧系金属镧,可以在空气中与氢气可逆地反应,同时表现出光学性质的显着变化。这些材料的薄膜施加到光纤末端的传感器上,已用于检测空气中的低浓度的氢气。涂层包括薄银层,其中产生表面等离子体,化学多变色材料的薄膜,以及促进与氢气反应的催化层。选择膜厚度沿着银和化学多变量材料之间的界面产生引导表面等离子体波。二向光束分离器将反射光谱分离成邻近谐振的部分和远离共振的一部分,并将这两个部分引导到两个单独的光电二极管。这两个信号的电子比例抵消了大部分光纤传输噪声并提供了稳定的氢气信号。

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