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基于MXene-CuO复合材料的超灵敏室温NO气体传感器

Ultrasensitive Room-Temperature NO Gas Sensor Based on MXene-CuO Composites.

作者信息

Ren Wenbin, Luan Jinfeng, Yin Liang, Chen Huijuan, Wang Changchun, Zhang Pinhua, Cui Guangliang, Lv Li

机构信息

School of Physics and Electrical Engineering, Linyi University, Linyi, 276000, China.

出版信息

ACS Sens. 2025 May 23;10(5):3579-3588. doi: 10.1021/acssensors.5c00215. Epub 2025 Apr 18.

Abstract

The development of real-time trace-level NO 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 NO sensor using MXene-CuO composites prepared via a hydrothermal method. Systematic evaluation of MXene-introduced effects identified the 0.84 wt % MXene-CuO composite as optimal, exhibiting 4-fold enhanced sensitivity and shorter response (55 s)/recovery (35 s) time compared to pure CuO. 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 CuO, 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 NO chemisorption through charge polarization effects. This research offers a novel strategy for designing optimized structures to enhance the sensitivity of MOS-based materials for NO gas detection.

摘要

开发能够在室温下运行的实时痕量一氧化氮(NO)定量平台,对职业安全和公共卫生监测系统而言是一项重大进展。本研究展示了一种使用通过水热法制备的MXene-CuO复合材料的室温NO传感器。对引入MXene的效果进行系统评估后,确定0.84 wt%的MXene-CuO复合材料为最佳,与纯CuO相比,其灵敏度提高了4倍,响应时间(55秒)/恢复时间(35秒)更短。此外,该传感器具有低检测限(10 ppb)、高选择性、良好的可逆性和长期稳定性。增强的传感性能源于MXene和CuO之间精确设计的界面结构,该结构通过传感材料中的传导隧道有效调节电荷转移行为。此外,氧空位工程创建了缺陷介导的吸附中心,通过电荷极化效应促进NO的选择性化学吸附。本研究为设计优化结构以提高基于金属氧化物半导体(MOS)材料对NO气体检测的灵敏度提供了一种新策略。

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