纳米片
纳米颗粒
硫化物
选择性
金属
检出限
硫黄
吸附
材料科学
纳米化学
氧气
纳米技术
催化作用
硫芥
化学工程
化学
色谱法
有机化学
冶金
工程类
毒性
作者
Haizhen Li,Gang Wu,Jina Wu,Jun Shen,Likun Chen,Jingjing Zhang,Yuyin Mao,Hefeng Cheng,Maolin Zhang,Qingyu Ma,Yongchao Zheng
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2024-06-26
卷期号:9 (7): 3773-3782
被引量:20
标识
DOI:10.1021/acssensors.4c01002
摘要
Exposure to mustard gas can cause damage or death to human beings, depending on the concentration and duration. Thus, developing high-performance mustard-gas sensors is highly needed for early warning. Herein, ultrathin WO3 nanosheet-supported Pd nanoparticles hybrids (WO3 NSs/Pd) are prepared as chemiresistive sulfur mustard simulant (e.g., 2-chloroethyl ethyl sulfide, 2-CEES) gas sensors. As a result, the optimal WO3 NSs/Pd-2 (2 wt % of Pd)-based sensor exhibits a high response of 8.5 and a rapid response/recovery time of 9/92 s toward 700 ppb 2-CEES at 260 °C. The detection limit could be as low as 15 ppb with a response of 1.4. Moreover, WO3 NSs/Pd-2 shows good repeatability, 30-day operating stability, and good selectivity. In WO3 NSs/Pd-2, ultrathin WO3 NSs are rich in oxygen vacancies, offer more sites to adsorb oxygen species, and make their size close to or even within the thickness of the so-called electron depletion layer, thus inducing a large resistance change (response). Moreover, strong metal-support interactions (SMSIs) between WO3 NSs and Pd nanoparticles enhance the catalytic redox reaction performance, thereby achieving a superior sensing performance toward 2-CEES. These findings in this work provide a new approach to optimize the sensing performance of a chemiresistive sensor by constructing SMSIs in ultrathin metal oxides.
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