Synergistic Self-Assembly Enabled Highly Ordered Mesoporous WSe2/WO3 Crystalline Heterostructures for Rapid NO2 Sensing at Room Temperature
作者:Zhenliang Li, Yuan Ren, Yujian Rao, Rui Ma, Ao Xu, Zejun Han, Tuo Zhang, Xueqiong Cui, Qiongfeng Shi, Li Tao · 发表于:ACS Sensors · 年份:2025 · DOI:10.1021/acssensors.5c00955 · 被引用次数:12 · 研究领域:Gas Sensing Nanomaterials and Sensors、Transition Metal Oxide Nanomaterials、Advanced Chemical Sensor Technologies
A rapid and highly sensitive detection of harmful gas molecules is crucial in artificial olfaction (electronic nose), which plays a significant role in areas such as environmental monitoring and healthcare. However, it remains a significant challenge to construct highly sensitive molecular sensors with fast response at room temperature due to the limitations in structures and properties (e.g., porosity, crystallinity, and carrier mobility) of the sensing materials. Herein, this study proposes a facile method to enable highly crystalline mesoporous WSe 2 /WO 3 (m-WSe 2 /WO 3 ) semiconductor heterostructures through controllable interfacial self-assembly of polyoxometalate (POM) clusters and amphiphilic block copolymers combined with a thermal-assisted conversion process. It allows uniform pore size, open channels, large specific surface area, highly crystalline framework, and abundant transition metal chalcogenide/metal oxide heterojunction interfaces. The m-WSe 2 /WO 3 -based chemiresistive semiconductor sensor achieves efficient detection of NO 2 at room temperature, including ultrafast response (5 s), high selectivity ( S NO2 / S gas > 5), high sensitivity (62.5%@50 ppm), low detection limit (50 ppb), and long-term stability (>30 days). Thanks to the synergistic improvement of sensing dynamics between mesostructure and heterojunction, such a few-second response time has been reduced by half of the reported values in most existing counterparts based on two-dimensional materi...