Yang Xuanyu, Deng Yu, Yang Haitao, Liao Yaozu, Cheng Xiaowei, Zou Yidong, Wu Limin, Deng Yonghui
Department of Chemistry, Department of Gastroenterology and Hepatology, Zhongshan Hospital, Zhangjiang Fudan International Innovation Center, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, iCHEM, Fudan University, Shanghai, 200433, China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Institute of Functional Materials, Donghua University, Shanghai, 201620, China.
Adv Sci (Weinh). 2022 Nov 14;10(1):e2204810. doi: 10.1002/advs.202204810.
With the emerging of the Internet of Things, chemiresistive gas sensors have been extensively applied in industrial production, food safety, medical diagnosis, and environment detection, etc. Considerable efforts have been devoted to improving the gas-sensing performance through tailoring the structure, functions, defects and electrical conductivity of sensitive materials. Among the numerous sensitive materials, mesoporous semiconductor metal oxides possess unparalleled properties, including tunable pore size, high specific surface area, abundant metal-oxygen bonds, and rapid mass transfer/diffusion behavior (Knudsen diffusion), which have been regarded as the most potential sensitive materials. Herein, the synthesis strategies for mesoporous metal oxides are overviewed, the classical functionalization techniques of sensitive materials are also systemically summarized as a highlight, including construction of mesoporous structure, regulation of micro-nano structure (i.e., heterojunctions), noble metal sensitization (e.g., Au, Pt, Ag, Pd) and heteroatomic doping (e.g., C, N, Si, S). In addition, the structure-function relationship of sensitive materials has been discussed at molecular-atomic level, especially for the chemical sensitization effect, elucidating the interface adsorption/catalytic mechanism. Moreover, the challenges and perspectives are proposed, which will open a new door for the development of intelligent gas sensor in various applications.
随着物联网的兴起,化学电阻式气体传感器已广泛应用于工业生产、食品安全、医学诊断和环境检测等领域。人们通过调整敏感材料的结构、功能、缺陷和电导率等,致力于提高气体传感性能。在众多敏感材料中,介孔半导体金属氧化物具有无与伦比的特性,包括可调孔径、高比表面积、丰富的金属 - 氧键以及快速的质量传递/扩散行为(克努森扩散),被视为最具潜力的敏感材料。在此,综述了介孔金属氧化物的合成策略,还系统总结了敏感材料的经典功能化技术作为重点内容,包括介孔结构的构建、微纳结构(即异质结)的调控、贵金属敏化(如Au、Pt、Ag、Pd)和杂原子掺杂(如C、N、Si、S)。此外,在分子 - 原子水平上讨论了敏感材料的结构 - 功能关系,特别是化学敏化效应,阐明了界面吸附/催化机制。而且,提出了挑战与展望,这将为智能气体传感器在各种应用中的发展开启一扇新的大门。