首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Improving p-to-n transition and detection range of bimodal hydrogen-sensitive nanohybrids of hole-doped rGO and chemochromic Pd-decorated-MoO3 nanoflakes
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Improving p-to-n transition and detection range of bimodal hydrogen-sensitive nanohybrids of hole-doped rGO and chemochromic Pd-decorated-MoO3 nanoflakes

机译:改善孔掺杂RGO和化学多元化PD装饰 - MOO3纳米薄片的双峰氢敏感纳米油脂的P-TO-N转变和检测范围

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摘要

Detection of hydrogen (H-2) over a wide concentration range (from parts-per-million levels to 4%) is necessary for safety in using hydrogen-fuel cell systems. For this purpose, our development of H-2 sensitive nanohybrids of reduced graphene oxide (rGO) and chemochromic palladium-decorated molybdenum trioxide (Pd:MoO3) nanoflakes is presented. Additionally, the nanohybrids were employed as the active channel in a thin film transistor platform to invest informative characteristics for understanding their electrical properties and sensing mechanism. Through sensing measurements, (i) phenomena relating to response saturation and reversed behavior of gas sensors towards high exposure doses (i.e., pto-n transition) and (ii) doping effects on the p-to-n transition and detection range of the hybrid materials are clarified. With combining electrical and visual output signals, the bimodal devices using the hole-doped nanohybrids can detect H-2 over a wide concentration range (from 10 ppm to over 10%) at room temperature. Our results reveal opportunities for further development and improvement of hybrid nanomaterials and chemical sensors having a large sensing capability. (C) 2018 Elsevier B.V. All rights reserved.
机译:在使用氢气燃料电池系统的安全性中,需要在宽浓度范围内检测较宽的浓度范围(从每百万百万水平到4%)。为此目的,介绍了我们对石墨烯(RGO)和化学多变量钯装饰钼(PD:MOO3)纳米薄片的H-2敏感纳米组织的发展。另外,使用纳米冬杂于薄膜晶体管平台中的有源通道,以投资信息特征以了解其电性能和传感机制。通过感测测量,(i)与响应饱和度的现象和气体传感器的反向行为朝向高曝光剂量(即,第n-N转变)和(ii)对杂种的p-to-n转变和检测范围的掺杂效应澄清了材料。通过组合电气和视觉输出信号,使用空穴掺杂纳米露出的双峰器件可以在室温下以宽浓度范围(10ppm至超过10%以上)检测H-2。我们的结果揭示了进一步开发和改进杂种纳米材料和具有较大传感能力的化学传感器的机会。 (c)2018年elestvier b.v.保留所有权利。

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