The controllable synthesis and enhanced gas sensing performances of AuNP-modified ZnSnO 3 hollow nanocubes toward highly sensitive toluene detection

Morphology control and noble-metal modification have become effective ways to improve the gas sensing performances of mixed-metal-oxide sensors. In this study, ZnSnO 3 nanocube structures with different morphologies were synthesized via combining NaOH-assisted dissolution and a calcination process,...

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Veröffentlicht in:New journal of chemistry 2022-08, Vol.46 (30), p.14363-14374
Hauptverfasser: Li, Jun, Sun, Yongjiao, Tong, Zhaomin, Zhao, Zhenting, Zhang, Wendong, Hu, Jie, Chen, Lin
Format: Artikel
Sprache:eng
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Zusammenfassung:Morphology control and noble-metal modification have become effective ways to improve the gas sensing performances of mixed-metal-oxide sensors. In this study, ZnSnO 3 nanocube structures with different morphologies were synthesized via combining NaOH-assisted dissolution and a calcination process, and they were then modified with various amounts of Au nanoparticles through a chemical reduction method. Some important parameters were systematically investigated to optimize the gas sensing performance toward toluene detection. Noticeably, the as-prepared Au 2 NPs@ZnSnO 3 hollow nanocube sensor exhibits an ultra-high response (80.82@100 ppm), fast response and recovery times (11 s/12 s, respectively), a low limit of detection (10 ppb), excellent repeatability, long-term stability, and good anti-humidity properties. The enhanced gas sensing mechanism of the Au 2 NPs@ZnSnO 3 sensor is also thoroughly discussed, which can be attributed to the unique hollow nanocube structure and the excellent electron sensitization and chemical sensitization properties of AuNPs. As a result, the optimum AuNP-modified ZnSnO 3 sensing material is promising for high-sensitivity toluene detection for practical applications.
ISSN:1144-0546
1369-9261
DOI:10.1039/D2NJ02133A