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Self-aligned CH3NH3PbBr3 perovskite nanowires via dielectrophoresis for gas sensing applications

APPLIED MATERIALS TODAY(2022)

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摘要
Metal halide perovskites (MHPs) with environment-dependent optoelectronic properties can provide a new platform for highly sensitive and active gas sensor materials. While MHPs are a crystalline semiconductor with high carrier mobility and long carrier diffusion length, the formation of efficient channels for charge carriers can be hindered by the intrinsic point defects and impurities as well as grain boundaries in the solution-cast films with an uncontrolled morphology. Furthermore, a precise control of nanostructured MHP materials and their distribution with respect to device electrodes still remains challenging, which requires tedious efforts for additional fabrication. Herein, we demonstrate that the dielectrophoresis process can allow for self-alignment of single-crystalline MHP nanowires (NWs) with a uniform spatial distribution and orientation on interdigitated electrodes. We found that MAPbBr 3 NWs array sensors exhibited the highest sensitivity ( similar to 120% and tau = 40 s at 100 ppm) for H 2 S gas molecules among oxidizing (NO 2 ) and reducing gases (NH 2 and H 2 S), whereas no significant response was observed for MAPbCl 3 NWs. The MAPbBr 3 NW array-based sensor showed a long time stability exceeding one month with less than 20% derivation during first two weeks. The characteristic response of MHP NWs array significantly depends on the interaction of oxygen molecules adsorbed at their surface with the environmental target species, in which their surface conductivity can be modulated by the variation of trap states related to surface defects. Our work demonstrates a simple and facile route to synthesis and self-alignment of MHP NWs for chemiresistive gas sensors, broadening the range of technological applications of MHPs. (c) 2021 Elsevier Ltd. All rights reserved.
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关键词
Halide perovskites, Nanowire, Dielectrophoresis, Alignment, Gas sensor
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