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Hydrogen sensing properties of Pt/Pd bimetal decorated on highly hydrophobic Si nanowires

机译:高疏水性硅纳米线上修饰的Pt / Pd双金属的氢感测特性

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This paper describes the synthesis of Pt/Pd bimetal decorated highly hydrophobic rough silicon nanowires (Si NWs) by using a facile metal assisted chemical etching and pulse laser deposition (PLD) process. In addition, the potential of the Si NWs as a new hydrogen (H-2) detection matrix was investigated. The Pt/Pd bimetal was coated as a discrete ultra thin film manner in a semi-dense configuration over the basal podium and along the length of vertical-standing and semi-densely distributed rough Si NW clusters. The resulting structure showed significant advantages in H-2 sensing performances such as a large detection range of 1-40,000 ppm, high response magnitude of nearly 5.02%, and fast response-recovery time of 7/7 s to 10,000 ppm (1 vol%) hydrogen concentration at an optimum operating temperature of 75 degrees C. The observed characteristics of fast response recovery time could relate to the enhanced hydrogen-induced changes in the work function of the Pt/Pd bimetal decorated Si NWs (Pt/Pd-Si NWs), which were configured as an array matrix comprising of many nanowire clusters with variable distances between the two electrodes. Finally, the fabricated sensor showed excellent repeatability towards (1 vol %) hydrogen concentration. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文介绍了通过使用方便的金属辅助化学蚀刻和脉冲激光沉积(PLD)工艺合成Pt / Pd双金属装饰的高疏水性粗糙硅纳米线(Si NWs)。此外,还研究了Si NWs作为新型氢(H-2)检测基质的潜力。将Pt / Pd双金属以离散的超薄膜方式以半致密的结构涂覆在基台上,并沿着垂直站立且半致密分布的粗糙Si NW簇的长度进行涂覆。所得结构在H-2感测性能方面显示出显着优势,例如1-40,000 ppm的大检测范围,近5.02%的高响应幅度以及7/7 s至10,000 ppm(1 vol%)的快速响应恢复时间)在75°C的最佳工作温度下的氢浓度。观察到的快速响应恢复时间的特性可能与Pt / Pd双金属修饰的Si NWs(Pt / Pd-Si NWs)的功函中氢诱导的增强变化有关),它们被配置为一个阵列矩阵,其中包含许多纳米线簇,两个电极之间的距离可变。最终,所制造的传感器对于氢浓度(1体积%)表现出优异的可重复性。 (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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