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Potenciación de la adsorción y el rendimiento de detección de MoS2 para gases de descomposición de SF6 mediante
Mamutjan Tursun1, Yifan Liu1, Abulimiti Yumaier1
1Xinjiang Key Laboratory of Novel Functional Materials Chemistry, College of Chemistry and Environmental Sciences, Kashi University Kashi 844000 PR China mmtj15@stu.xjtu.edu.cn.
Abstract:
In electrical power systems, SF6 in Gas Insulated Switchgear (GIS) decomposes under partial discharge, yielding toxic products such as H2S, SO2, SOF2, SO2F2. Molybdenum disulfide (MoS2), a promising two-dimensional material, exhibits potential in gas sensing but its pristine form suffers from weak adsorption capacity for gas molecules. Herein, we carry out a systematic exploration of the gas-sensing capabilities of eight non-metal (NM)-doped MoS2 (NM@MoS2) materials toward SF6 decomposition gases by leveraging first-principles calculations. The results reveal that all NM@MoS2 substrates exhibit thermodynamic stability with negative binding energies ranging from -0.84 to -7.11 eV. Pristine MoS2 shows weak physisorption of target gases, accompanied by low adsorption energies (-0.21 to -0.33 eV), large adsorption distances (2.90 to 3.70 Å), minimal charge transfer and limited sensitivity. In contrast, the NM@MoS2 substrates demonstrate distinct adsorption behaviors: O@MoS2, Se@MoS2, and Te@MoS2 retain physical adsorption (adsorption energies: -0.14 to -0.37 eV; distances: 2.73 to 4.02 Å), whereas B@MoS2, C@MoS2, N@MoS2, P@MoS2, and Si@MoS2 demonstrate enhanced adsorption (adsorption energies: -0.39 to -1.67 eV; distances: 1.60 to 3.24 Å), accompanied by significant charge transfer and enhanced sensing-response. Of these substrates, Si@MoS2 demonstrates moderate recovery times at ambient temperature (2.82 s) and demonstrates significant sensing-response to SF6 decomposition components, highlighting its potential for practical gas sensing applications. This study demonstrates that non-metal doping can effectively enhance the gas-detection efficacy of MoS2 towards SF6 decomposition products, providing theoretical support for developing high-efficiency gas sensors.
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