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Fabrication and characterization of thermochemical hydrogen sensor with laminated structure

机译:叠层结构热化学氢传感器的制作与表征

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In this study, we reported the simple and cost-effective fabrication of thermochemical hydrogen (TCH) sensors composed of chalcogenide thin films and Pt/Al2O3 powders. Chalcogenide thin films of two types, composed of Bi2Te3 (monomorphic-type) and Bi2Te3 -Sb2Te3 (four-leg PN junction-type), were prepared by electrochemical deposition. The Pt/Al2O3 powder, which acts as a heating catalyst, was synthesized by impregnation of an Al2O3 powder with an aqueous solution of platinum (IV) chloride pentahydrate. Its heating process was optimized via a hydrogen-sensing evaluation to control the size of the Pt particles. The monomorphic-type TCH sensor showed an output signal of 14.2 mu V in response to 10 vol% hydrogen gas, whereas an output signal of 39.6 mu V was obtained from a four-leg PN junction type TCH sensor. Even though the n-p junction-type had the same deposition area as that of the monomorphic-type, the output signal of the n-p junction TCH sensor was greater by a factor of 2.8. In addition, the monomorphic-type TCH sensor had an inferior response time (T-90) of 31 s and a longer recovery time (D-10) of 38 s; the four leg PN junction-type TCH sensor had a lowest response time of 27 s and a fastest recovery time of 9 s (in 3% H-2/air at room temperature). (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,我们报告了由硫族化物薄膜和Pt / Al2O3粉末组成的热化学氢(TCH)传感器的简单且经济高效的制造方法。通过电化学沉积制备由Bi 2 Te 3(单晶型)和Bi 2 Te 3 -Sb 2 Te 3(四脚PN结型)组成的两种类型的硫族化物薄膜。通过用五水合氯化铂(IV)浸渍Al2O3粉末来合成用作加热催化剂的Pt / Al2O3粉末。通过氢感测评估优化了其加热过程,以控制Pt颗粒的尺寸。单态型TCH传感器响应10vol%氢气显示出14.2μV的输出信号,而从四脚PN结型TCH传感器获得了39.6μV的输出信号。即使n-p结型具有与单晶型相同的沉积面积,n-p结TCH传感器的输出信号也要大2.8倍。另外,单型TCH传感器的响应时间(T-90)为31 s,恢复时间(D-10)为38 s。四脚PN结型TCH传感器的响应时间最短为27 s,最快恢复时间为9 s(在室温下3%H-2 /空气中)。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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