Zhang Yajie, Jiang Yadong, Yuan Zhen, Liu Bohao, Zhao Qiuni, Huang Qi, Li Ziteng, Zeng Wen, Duan Zaihua, Tai Huiling
State Key Laboratory of Electronic Thin Films and Integrated Devices, School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China (UESTC), Chengdu, 610054, P. R. China.
College of Materials Science and Engineering, Chongqing University, Chongqing, 400030, P. R. China.
Small. 2023 Nov;19(48):e2303631. doi: 10.1002/smll.202303631. Epub 2023 Jul 4.
Metal oxide gas sensors have long faced the challenge of low response and poor selectivity, especially at room temperature (RT). Herein, a synergistic effect of electron scattering and space charge transfer is proposed to comprehensively improve gas sensing performance of n-type metal oxides toward oxidizing NO (electron acceptor) at RT. To this end, the porous SnO nanoparticles (NPs) assembled from grains of about 4 nm with rich oxygen vacancies are developed through an acetylacetone-assisted solvent evaporation approach combined with precise N and air calcinations. The results show that the as-fabricated porous SnO NPs sensor exhibits an unprecedented NO -sensing performance, including outstanding response (R /R = 772.33 @ 5 ppm), fast recovery (<2 s), an extremely low detection limit (10 ppb), and exceptional selectivity (response ratio >30) at RT. Theoretical calculation and experimental tests confirm that the excellent NO sensing performance is mainly attributed to the unique synergistic effect of electron scattering and space charge transfer. This work proposes a useful strategy for developing high-performance RT NO sensors using metal oxides, and provides an in-depth understanding for the basic characteristics of the synergistic effect on gas sensing, paving the way for efficient and low power consumption gas detection at RT.
长期以来,金属氧化物气体传感器一直面临着响应低和选择性差的挑战,尤其是在室温(RT)下。在此,我们提出了一种电子散射和空间电荷转移的协同效应,以全面提高n型金属氧化物在室温下对氧化性NO(电子受体)的气敏性能。为此,通过乙酰丙酮辅助溶剂蒸发法结合精确的N和空气煅烧,制备了由约4nm晶粒组装而成且具有丰富氧空位的多孔SnO纳米颗粒(NPs)。结果表明,所制备的多孔SnO NPs传感器展现出前所未有的NO传感性能,包括出色的响应(在5ppm时R /R = 772.33)、快速恢复(<2s)、极低的检测限(10ppb)以及在室温下出色的选择性(响应比>30)。理论计算和实验测试证实,优异的NO传感性能主要归因于电子散射和空间电荷转移的独特协同效应。这项工作为利用金属氧化物开发高性能室温NO传感器提出了一种有用的策略,并为协同效应在气敏方面的基本特性提供了深入理解。为室温下高效、低功耗气体检测铺平了道路。