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基于纳米材料的氢气传感器的最新进展与挑战

Recent Advances and Challenges of Nanomaterials-Based Hydrogen Sensors.

作者信息

Wang Bei, Sun Ling, Schneider-Ramelow Martin, Lang Klaus-Dieter, Ngo Ha-Duong

机构信息

Department of Microsystem Technology, University of Applied Sciences Berlin, 12459 Berlin, Germany.

Fraunhofer Institute for Reliability and Microintegration IZM, 13355 Berlin, Germany.

出版信息

Micromachines (Basel). 2021 Nov 21;12(11):1429. doi: 10.3390/mi12111429.

Abstract

Safety is a crucial issue in hydrogen energy applications due to the unique properties of hydrogen. Accordingly, a suitable hydrogen sensor for leakage detection must have at least high sensitivity and selectivity, rapid response/recovery, low power consumption and stable functionality, which requires further improvements on the available hydrogen sensors. In recent years, the mature development of nanomaterials engineering technologies, which facilitate the synthesis and modification of various materials, has opened up many possibilities for improving hydrogen sensing performance. Current research of hydrogen detection sensors based on both conservational and innovative materials are introduced in this review. This work mainly focuses on three material categories, i.e., transition metals, metal oxide semiconductors, and graphene and its derivatives. Different hydrogen sensing mechanisms, such as resistive, capacitive, optical and surface acoustic wave-based sensors, are also presented, and their sensing performances and influence based on different nanostructures and material combinations are compared and discussed, respectively. This review is concluded with a brief outlook and future development trends.

摘要

由于氢气的独特性质,安全是氢能应用中的一个关键问题。因此,用于泄漏检测的合适氢气传感器必须至少具备高灵敏度和选择性、快速响应/恢复、低功耗以及稳定的功能,这就需要对现有的氢气传感器进行进一步改进。近年来,纳米材料工程技术的成熟发展促进了各种材料的合成与改性,为提高氢气传感性能开辟了许多可能性。本综述介绍了基于传统材料和创新材料的氢气检测传感器的当前研究。这项工作主要集中在三类材料上,即过渡金属、金属氧化物半导体以及石墨烯及其衍生物。还介绍了不同的氢气传感机制,如基于电阻、电容、光学和表面声波的传感器,并分别比较和讨论了它们基于不同纳米结构和材料组合的传感性能及影响。本综述最后给出了简要展望和未来发展趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/285c/8626019/625f51f0e223/micromachines-12-01429-g001.jpg

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