Ultrahigh humidity tolerance of room-temperature hydrogen sensitive Pt–WO3 porous composite ceramics with ultra-large WO3 grains

被引:0
作者
Yong Huang
Pengcheng Li
Liqun Xu
Yajie Yu
Wanping Chen
机构
[1] Wuhan University,Key Laboratory of Artificial Micro
[2] Huaneng Wuhan Power Generation Co., and Nano
[3] Ltd,Structures of Ministry of Education, School of Physics and Technology
[4] Research Institute of Wuhan University in Shenzhen,undefined
来源
Applied Physics A | 2021年 / 127卷
关键词
Hydrogen; Sensors; WO; Humidity tolerance; Ceramics;
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摘要
Two kinds of WO3 powders with average size of 100 nm and 5 μm have been used to prepare Pt–WO3 porous composite ceramics, whose WO3 grains are around 1 and 5 μm, respectively. The ceramics with 1 μm WO3 grains show a sensitivity of 755 to 0.08% H2 – 20% O2 – N2 in air of 30% relative humidity (RH) at room temperature, but show no response to this concentration of hydrogen in air of 50% RH due to the depression effect of water, which indicate a relatively low humidity tolerance for the ceramics. In contrast, the ceramics with 5 μm WO3 grains show sensitivities of 1200 and 80 to 0.08% H2 – 20% O2 – N2 at room temperature in air of 30% and 50% RH, respectively, and a sensitivity of 8 to 0.02% H2 – 20% O2 – N2 in air of 70% RH, which represent an ultrahigh humidity tolerance. These results clearly demonstrate that the microstructure of room-temperature hydrogen sensitive metal oxide (MOX) materials exerts a decisive influence on their humidity tolerance. Much attention should be paid to MOX materials with large and even ultra-large MOX grains when room-temperature MOX gas sensors with high humidity tolerance are being developed.
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  • [1] Bakrania SD(2009)The effects of two thick film deposition methods on tin dioxide gas sensor performance Sensors 9 6853-6868
  • [2] Wooldridge MS(2010)Identifying performance gaps in hydrogen safety sensor technology for automotive and stationary applications Int. J. Hydrogen Energy 35 373-384
  • [3] Boon-Brett L(2006)Metal and metal oxide nanoparticles in chemiresistors: does the nanoscale matter? Small 2 36-50
  • [4] Bousek J(2009)Metal-oxide nanostructure and gas-sensing performance Sens. Actuators B 138 113-119
  • [5] Black G(2007)Gas sensors based on nanostructured materials Analyst 132 1083-1099
  • [6] Franke ME(2017)Vanadium-doped tin oxide porous nanofibers: enhanced responsivity for hydrogen detection Talanta 167 638-644
  • [7] Koplin TJ(2018)Colorimetric hydrogen gas sensor based on PdO/metal oxides hybrid nanoparticles Talanta 188 356-364
  • [8] Simon U(2016)Contrasting room-temperature hydrogen sensing capabilities of Pt-SnO Nano Res. 9 3528-3535
  • [9] Vander Wal R(2018) and Pt-TiO Int. J. Hydrogen Energy 43 21177-21185
  • [10] Hunter G(2017) composite nanoceramics Int. J. Hydrogen Energy 42 6420-6424