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MXene@ZnIn2S4 Two-Dimensional Heterostructure with Enriched Sulfur Vacancies for Resonant-Gravimetric Detection of
Ding Wang1, Yuecheng Tian1, Jie Guo1
1School of Materials and Chemistry, School of Intelligent Emergency Management, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China.
Abstract:
Developing triethylamine gas sensors with high sensitivity, fast response, superior selectivity, and room-temperature operability has long been a challenge. By correlating the mass of the adsorbed molecules to the resonance frequency, the resonant microcantilevers show promising potential for room-temperature gas detection. In this work, we present a novel MXene@ZnIn2S4 two-dimensional heterostructure with abundant sulfur vacancies as a sensitive material for efficient triethylamine detection. Compared with gas sensors constructed from pure 2D MXene and 2D ZnIn2S4 nanosheets, the MXene@ZnIn2S4 gas sensor exhibits significantly improved sensitivity. The MXene@ZnIn2S4 sensor achieves a high sensitivity variation of 16.1 Hz for 500 ppb triethylamine and demonstrates high selectivity, a low detection limit (5 ppb), and effective moisture resistance. Multiple in situ characterizations and thermodynamic analyses reveal that this remarkable gas sensing capability arises from the distinctive heterojunction, the abundance of active sites induced by surface sulfur vacancies, and the outstanding adsorption thermodynamics of MXene@ZnIn2S4. The combination of a 2D@2D heterostructure and microcantilever sensor paves the way to develop high-performance room-temperature gas sensors.
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