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Dual Improvement in Sensitivity and Humidity Tolerance of a NO2Sensor Based on 3-Aminopropyltriethoxysilane Self-Assembled Monolayer-Functionalized SnSe2for Explosive Photolysis Gas Detection

Authors :
Guo, Xuezheng
Shi, Yijie
Liu, Peilin
Ding, Yanqiao
Du, Bingsheng
Liang, Chengyao
Niu, Wen
Tan, Yiling
He, Yuhui
Chen, Jiangzhao
Miao, Xiangshui
Yang, Xi
He, Yong
Source :
ACS Applied Materials & Interfaces; June 2023, Vol. 15 Issue: 23 p28358-28369, 12p
Publication Year :
2023

Abstract

Explosives can be analyzed for their content by detecting the photolytic gaseous byproducts. However, to prevent electrostatic sparking, explosives are frequently preserved in conditions with low temperatures and high humidity, impeding the performance of gas detection. Thus, it has become a research priority to develop gas sensors that operate at ambient temperature and high humidity levels in the realm of explosive breakdown gas-phase detection. In this work, 3-aminopropyltriethoxysilane (APTES) self-assembled monolayer-functionalized tin diselenide (APTES-SnSe2) nanosheets were synthesized viaa facile solution stirring strategy, resulting in a room-temperature NO2sensor with improved sensitivity and humidity tolerance. The APTES-SnSe2sensor with moderate functionalization time outperforms the pure SnSe2sensor in terms of the response value (317.51 vs110.98%) and response deviation (3.11 vs24.13%) under humidity interference to 500 ppb NO2. According to density functional theory simulations, the stronger adsorption of terminal amino groups of the APTES molecules to NO2molecules and stable adsorption energy in the presence of H2O are the causes of the improved sensing capabilities. Practically, the APTES-SnSe2sensor achieves accurate detection of photolysis gases from trace nitro explosives octogen, pentaerythritol tetranitrate, and trinitrotoluene at room temperature and various humidity levels. This study provides a potential strategy for the construction of gas sensors with high responsiveness and antihumidity capabilities to identify explosive content in harsh environments.

Details

Language :
English
ISSN :
19448244
Volume :
15
Issue :
23
Database :
Supplemental Index
Journal :
ACS Applied Materials & Interfaces
Publication Type :
Periodical
Accession number :
ejs63204609
Full Text :
https://doi.org/10.1021/acsami.3c02782