Ultrasensitive Room-Temperature NO2 Gas Sensor Based on MXene–Cu2O Composites
Wenbin Ren (21084741), Jinfeng Luan (21084738), Liang Yin (458027), Huijuan Chen (390513), Changchun Wang (1534306), Pinhua Zhang (12903085), Guangliang Cui (12903088), Li Lv (382638)
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摘要与影响
The development of real-time trace-level NO2 quantification platforms that can be operated at room temperature constitutes a critical advancement for occupational safety and public health monitoring systems. This study demonstrates a room-temperature NO2 sensor using MXene–Cu2O composites prepared via a hydrothermal method. Systematic evaluation of MXene-introduced effects identified the 0.84 wt % MXene–Cu2O composite as optimal, exhibiting 4-fold enhanced sensitivity and shorter response (55 s)/recovery (35 s) time compared to pure Cu2O. Additionally, the sensor exhibits a low detection limit (10 ppb), high selectivity, great reversibility, and long-term stability. The enhanced sensing performance originates from precisely engineered interfacial architectures between MXene and Cu2O, which effectively adjust the charge-transfer behavior through the conduction tunnel in the sensing material. Furthermore, oxygen vacancy engineering creates defect-mediated adsorption centers that promote selective NO2 chemisorption through charge polarization effects. This research offers a novel strategy for designing optimized structures to enhance the sensitivity of MOS-based materials for NO2 gas detection.
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材料 / 化学MXene and MAX Phase Materials
Gas Sensing Nanomaterials and Sensors · Electromagnetic wave absorption materials