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Visible-light Induced Reduction of Graphene Oxide Using Plasmonic Nanoparticle
Published on: September 22, 2015
Visible-light-enhanced room-temperature methane sensing using a SnO2/WO3/graphene composite structure
Quanfu Li1, Jiaqi Li2, Lili Zhu2
1Guangxi Key Laboratory of Brain-inspired Computing and Intelligent Chips, School of Electronic and Information Engineering, Guangxi Normal University, Guilin, 541004, China; Key Laboratory of Integrated Circuits and Microsystems (Guangxi Normal University), Education Department of Guangxi Zhuang Autonomous Region, Guilin, 541004, China.
Abstract:
Room-temperature methane sensing remains challenging because CH4 is chemically stable and most chemiresistive metal-oxide sensors require thermal activation. Here, a visible-light-enhanced SnO2/WO3/graphene (SnO2/WO3/G) composite sensor is developed by integrating a porous SnO2/WO3 adsorption-photocatalytic layer with a highly conductive graphene transduction layer. Under 450 nm illumination at 25 °C and 60%RH, the sensor exhibits a response of 70.82% to 2000 ppm CH4, with response and recovery times of 46 and 86 s, respectively. The concentration-dependent response yields a theoretical limit of detection of 27.31 ppm. The device also demonstrates excellent cycle repeatability, with a relative standard deviation of 0.82%, and stable response during the current 30-day observation period, with a relative standard deviation of 3.49%. Comparative analysis indicates that the proposed sensor combines heater-free room-temperature operation, rapid response kinetics, and a high response in a single platform. The improved sensing behavior is attributed to the porous SnO2/WO3 surface, visible-light-assisted generation of reactive oxygen species, and interfacial charge transfer to graphene. These results provide a promising route for room-temperature CH4 monitoring.

