Au/Ta2O5/Pd/Au多层异质芯光纤SPR氢传感器的长期测量

SPIE OPTO Pub Date : 2016-03-16 DOI:10.1117/12.2210826
Ken Takahashi, A. Hosoki, M. Nishiyama, H. Igawa, Kazuhiro Watanabe
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引用次数: 1

摘要

作为一种生态和替代能源,氢燃料的需求已经增加。另一方面,氢气在空气中浓度超过4%时容易引起爆炸,因此氢气传感器需要具有快速和准确的检测氢气的能力。传统的氢传感器主要采用钯(Pd),钯是一种对氢具有高灵敏度和选择性的氢探测材料。一般情况下,Pd大量吸附氢形成氢化Pd,且Pd在吸附氢的体积变化过程中发生α-β相变。结果,钯的体积变化会导致氢传感器的劣化,从而影响氢传感器的时间响应和灵敏度。为了防止钯的变质,钯与金属(如Au和Ag)合金化,以防止钯经历α-β相变。为了抑制Pd的劣化,本文提出了一种基于表面等离子体共振(SPR)的异形芯光纤氢传感器,该传感器采用Au/Ta2O5/Pd/Au多层材料。采用相同结构的25 nm Au/ 60 nm Ta2O5/厚度的敏感膜,用3层1.4 nm Pd和0.6 nm Au或5 nm纯Pd的退火双层堆叠,制备了几种传感器,并对时间响应和灵敏度进行了评估。实验观察到,在第1次和第15次吸氢测试中,退火Pd- au的响应时间为3 ~ 6 s,而在4%氢浓度下,纯Pd的响应时间分别为16 ~ 22 s。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Long-term measurements of SPR hydrogen sensor based on hetero-core optical fiber with Au/Ta2O5/Pd/Au multilayers
Demands for a hydrogen fuel has been increased due to usages as an ecological and alternative energy resource. On the other hand, hydrogen easily causes an explosion above concentrations of 4 % in air, hence hydrogen sensors are need to have rapidity and accuracy for detecting hydrogen. Conventional hydrogen sensors have mainly used palladium (Pd) which is known as a hydrogen detecting material with high sensitivities and selectivity to hydrogen. Generally, Pd absorbs hydrogen in large amounts and forms Pd hydride, moreover, Pd experiences α-β phase transition during volume change of Pd with hydrogen absorption. As a result, the volume change of Pd induces a deterioration which affects time responses and sensitivities of hydrogen sensors. To keep Pd from deteriorating, alloying Pd with metals, such as Au and Ag, has been utilized as preventing Pd from experiencing α-β phase transition. In this paper, we propose a hetero-core optical fiber hydrogen sensor based on surface plasmon resonance (SPR) with multi-layers of Au/Ta2O5/Pd/Au in order to suppress the deterioration of Pd. A few sensors were prepared with the same construction of sensitive film 25-nm Au/ 60-nm Ta2O5/ thicknesses with stacks of annealed 3 double layers of 1.4-nm Pd and 0.6-nm Au or 5-nm pure Pd, and evaluated in terms of the time response and sensitivities. The response times at the 1st and the 15th hydrogen absorption test were experimentally observed to be from 3 s to 6 s for annealed Pd-Au, in contrast, to be from about 16 s to 22 s for pure Pd at 4 % hydrogen concentration, respectively.
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