材料科学
化学电阻器
电介质
氧化物
光电子学
电阻抗
激发
湿度
纳米技术
电气工程
热力学
物理
工程类
冶金
作者
Radislav A. Potyrailo,Steven Go,Daniel Sexton,Xiaxi Li,Nasr Alkadi,Andrei Kolmakov,Bruce Amm,Richard St-Pierre,Brian Scherer,M. Nayeri,Guang Wu,Christopher Collazo-Davila,Doug Forman,C. C. Calvert,Craig Mack,Philip McConnell
标识
DOI:10.1038/s41928-020-0402-3
摘要
Semiconducting metal oxides are widely used for gas sensors. The resulting chemiresistor devices, however, suffer from non-linear responses, signal fluctuations and gas cross-sensitivities, which limits their use in demanding applications of air-quality monitoring. Here, we show that conventional semiconducting metal oxide materials can provide high-performance sensors using an impedance measurement technique. Our approach is based on dielectric excitation measurements and yields sensors with a linear gas response (R2 > 0.99), broad dynamic range of gas detection (six decades of concentrations) and high baseline stability, as well as reduced humidity and ambient-temperature effects. We validated the technique using a range of commercial sensing elements and a range of gases in both laboratory and field conditions. Our approach can be applied to both n- and p-type semiconducting metal oxide materials, and we show that it can be used in wireless sensor networks, and drone-based and wearable environmental and industrial gas monitoring. Semiconducting metal oxide gas sensors with a linear response, broad dynamic range and high baseline stability can be created with the help of a dielectric excitation technique.
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