材料科学
纳米技术
化学战剂
领域(数学)
场效应晶体管
化学战
光电子学
晶体管
电气工程
生化工程
政治学
数学
工程类
电压
法学
纯数学
作者
Samik Mallik,Shyam Chand Pal,Snehanjan Acharyya,Shiv Prakash Verma,Ajoy Mandal,Prasanta Kumar Guha,Madhab C. Das,D. K. Goswami
标识
DOI:10.1021/acsami.3c05185
摘要
The selective and rapid detection of trace amounts of highly toxic chemical warfare agents has become imperative for efficiently using military and civilian defense. Metal-organic frameworks (MOFs) are a class of inorganic-organic hybrid porous material that could be potential next-generation toxic gas sensors. However, the growth of a MOF thin film for efficiently utilizing the material properties for fabricating electronic devices has been challenging. Herein, we report a new approach to efficiently integrate MOF as a receptor through diffusion-induced ingress into the grain boundaries of the pentacene semiconducting film in the place of the most adaptive chemical functionalization method for sensor fabrication. We used bilayer conducting channel-based organic field-effect transistors (OFETs) as a sensing platform comprising CPO-27-Ni as the sensing layer, coated on the pentacene layer, showed a strong response toward sensing of diethyl sulfide, which is one of the stimulants of bis (2-chloroethyl) sulfide, a highly toxic sulfur mustard (HD). Using OFET as a sensing platform, these sensors can be a potential candidate for trace amounts of sulfur mustard detection below 10 ppm in real time as wearable devices for onsite uses.
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