Orbital‐Level Chemical Coding for Exclusive Detection of VOCs Gases in Chemiresistive Sensors
Abstract
ABSTRACT Cost‐effective chemiresistive gas sensors are widely applicated in the commercial detection of volatile organic compounds (VOCs). However, their poor selectivity towards a target VOC within chemically similar mixtures impedes both qualitative and quantitative accuracy. This arises from the absence of intrinsic chemical criteria for designing selective sensing systems. This research emphasizes the importance of orbital engineering to achieve selectivity in chemiresistive materials. We tailor O 2 p ‐band center (ε O‑2 p ) of the model material SnO 2 , achieving near 100% selectivity towards triethylamine (C 6 H 15 N) and exceptional selectivity towards formaldehyde (CH 2 O), respectively, and maintaining these selectivity performances in gas mixtures. Specifically, tailoring the ε O‑2 p enables energy‐level matching between O 2 p orbitals and frontier molecular orbitals (FMOs) of distinct VOCs gases, thereby inducing selective orbital hybridizations. Such hybridization drives specific adsorption‐reaction processes and provides the electron‐transfer channel, ultimately triggering the exclusive electrical response. These findings not only unveil the origin of sensing selectivity but also establish a chemical coding strategy for the rational design of exclusive gas sensors based on an orbital‐energy‐matching framework.
Article Details
Authors (6)
Wu Wang
Department of Physics
Taobo Huang
Department of Environmental Science and Engineering Fudan University Shanghai P. R. China
Xiuping Zhu
Department of Environmental Science and Engineering Fudan University Shanghai P. R. China
Jieyuan Li
Yanjuan Sun
Institute of Fundamental and Frontier Sciences, School of Resources and Environment
Fan Dong
Institute of Fundamental and Frontier Sciences, School of Resources and Environment