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Optimized design of a nanocomposite Ta_2O_5 and Pd multilayer OFSPR H_2 sensor: a theoretical analysis

机译:纳米复合材料TA_2O_5和PD多层OFSPR H_2传感器的优化设计:理论分析

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For the first time, we perform a theoretical investigation into the operation of a multilayer nanocomposite based optical fibre surface plasmon resonance hydrogen sensor. The sensor consists of Pd nanoparticles embedded in host material of Ta_2O_5 over a thin continuous film of Ag, in place of a small unclad section of the fibre core. We compare the operation of this device to a sensor employing an individual multilayer based sensing stack (Ag/Ta_2O_5/Pd) by measuring the normalised output power through the fibre, and the sensor sensitivity. A much smaller modulation layer thickness is required in the NC structure in order to achieve the same spectral shift of the resonance location as compared to the IM based structure, thus indicating a faster response time. In both sensor types, sensitivity increased to a maximum with increasing modulation material thickness, beyond which it began to fall off. The NC based structure operated with overall higher sensitivity than the IM structure.
机译:我们首次对多层纳米复合材料基光纤表面等离子体共振氢传感器进行了理论研究。传感器由在Ag的薄的连续薄膜上嵌入Ta_2O_5的主体材料中嵌入的Pd纳米颗粒,代替纤维芯的小型遮挡部分。通过通过光纤测量归一化输出功率以及传感器灵敏度,将该设备的操作与采用各个多层的感测堆叠(AG / TA_2O_5 / PD)的传感器进行比较。在NC结构中需要更小的调制层厚度,以便与基于IM的结构相比实现相同的谐振位置的光谱偏移,从而指示更快的响应时间。在传感器类型中,灵敏度随着调制材料厚度的增加而增加至最大值,超出其开始脱落。基于NC的结构与IM结构的整体较高的灵敏度一起操作。

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