甲基膦酸二甲酯
异质结
肖特基二极管
肖特基势垒
材料科学
化学吸附
吸附
检出限
选择性
半导体
纳米技术
生物传感器
纳米颗粒
光电子学
化学传感器
载流子
灵敏度(控制系统)
分析物
沙林
过程(计算)
路易斯酸
量子隧道
化学
电荷(物理)
化学过程
传感器阵列
原位
电子转移
摩擦电效应
作者
Jun Shen,Haizhen Li,Han Chen,Gang Wu,Yan Cui,Likun Chen,Xubing Li,Huaping Wang,Shuya Cao,Yongchao Zheng
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2026-05-27
标识
DOI:10.1021/acssensors.6c00489
摘要
Chemical warfare agents (CWAs) are still a serious threat to human safety with high toxicity and ease of preparation. Developing room-temperature sensors to build miniaturized, low-power monitoring networks is an effective approach for achieving early warning of CWAs. However, most existing studies have reported responses to simulants such as dimethyl methylphosphonate (DMMP) at room temperature, but have not validated the detection effect of sarin (GB). Herein, by constructing high-quality MoO2-MoS2 Schottky heterojunctions in situ through a single controllable process step, we constructed a room-temperature semiconductor sensor for efficient detection of GB. Through the specific chemisorption of GB's characteristic P=O group at Lewis acid sites (MoO2) and the efficient regulation of charge transfer at the Schottky heterojunction interface, the synergistic interaction mechanism enables the MoO2-MoS2 heterojunction-based sensor to exhibit fast response time (18 s), high sensitivity (21.2%), and high selectivity toward 200 ppb GB at room temperature, along with an impressive detection limit (4 ppb). In situ characterization and theoretical calculations are combined to elucidate the mechanism for the enhanced response of the MoO2-MoS2 Schottky heterojunction to GB over DMMP. Additionally, real-time and selective distinguishing of mixed GB gases is realized by the dual-channel sensing array integrated with machine learning algorithms. This strategy offers a viable approach for designing room-temperature chemical agent sensing devices.
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