Zheng Shengliang, Sun Jianyong, Hao Juanyuan, Sun Quan, Wan Peng, Li Yue, Zhou Xin, Yuan Ye, Zhang Xu, Wang You
School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China.
Key Laboratory of Micro-Systems and Micro-Structures Manufacturing, Ministry of Education, Harbin 150001, People's Republic of China.
Nanotechnology. 2021 Apr 9;32(15):155505. doi: 10.1088/1361-6528/abd657.
Ever-increasing concerns over air quality and the newly emerged internet of things (IoT) for future environmental monitoring are stimulating the development of ultrasensitive room-temperature gas sensors, especially for nitrogen dioxide (NO), one of the most harmful air pollution species released round-the-clock from power plants and vehicle exhausts. Herein, tin dioxide nanorods/ethylenediamine-modified reduced graphene oxide (SnO/EDA-rGO) heterojunctions with selective adsorption and electronic structure modulation were engineered for highly sensitive and selective detection of NO at room temperature. The modified EDA groups not only enable selective adsorption to significantly enrich NO molecules around the interface but also realize a favorable modulation of SnO/EDA-rGO electronic structure by increasing the Fermi level of rGO, through which the sensing performance of NO is synergistically enhanced. The response of the SnO/EDA-rGO sensor toward 1 ppm NO reaches 282%, which exceeds the corresponding SnO/rGO sensor by a factor of 2.8. It also exhibits a low detection limit down to 100 ppb, enhanced selectivity, and rapid response/recovery kinetics. This approach to designing a novel heterojunction with significantly enhanced chemical and electric effects may shed light on the future engineering of gas-sensing materials.
对空气质量的日益关注以及新兴的用于未来环境监测的物联网,正在推动超灵敏室温气体传感器的发展,特别是针对二氧化氮(NO),它是发电厂和汽车尾气全天候排放的最有害的空气污染物质之一。在此,通过设计具有选择性吸附和电子结构调制功能的二氧化锡纳米棒/乙二胺修饰的还原氧化石墨烯(SnO₂/EDA-rGO)异质结,实现了在室温下对NO的高灵敏度和选择性检测。修饰的EDA基团不仅能够通过选择性吸附在界面周围显著富集NO分子,还能通过提高rGO的费米能级对SnO₂/EDA-rGO的电子结构进行有利调制,从而协同增强对NO的传感性能。SnO₂/EDA-rGO传感器对1 ppm NO的响应达到282%,比相应的SnO₂/rGO传感器高出2.8倍。它还具有低至100 ppb的检测限、增强的选择性以及快速的响应/恢复动力学。这种设计具有显著增强的化学和电学效应的新型异质结的方法,可能为未来气敏材料的工程设计提供启示。