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用于高灵敏度气体传感器的金属氧化物半导体功能化研究进展

Recent Advances in Functionalizing Metal Oxide Semiconductors for Highly Sensitive Gas Sensors.

作者信息

Zhang Ziling, Qiu Pengpeng, Deng Yonghui, Luo Wei

机构信息

State Key Laboratory for Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.

Department of Chemistry, Department of Gastroenterology and Hepatology, Zhongshan Hospital, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, iCHEM, Fudan University, Shanghai, 200433, China.

出版信息

Small Methods. 2025 May 7:e2500228. doi: 10.1002/smtd.202500228.

Abstract

Metal oxide semiconductors (MOSs) have emerged as pivotal materials for gas sensing technologies due to their inherent advantages, including cost-effectiveness, simplicity in synthesis, and easy fabrication of sensing nanodevices. These characteristics have made MOSs widely applicable in industrial, environmental, and biological monitoring. While MOSs offer intrinsic gas-sensing properties, their limited active site density and function diversity restrict sensitivity and selectivity, especially in complex gaseous environments. To overcome these limitations, extensive research efforts have been devoted to functionalizing MOSs through strategies such as heterojunction construction, noble metal nanoparticle loading (e.g., Au, Pt, Ag, Pd), and heteroatom doping (e.g., Si, Cr). Furthermore, composite materials have emerged as an effective approach to enhance MOSs-based gas sensors by integrating carbon-based materials or polymers to leverage synergistic interactions. These modifications expand the applicability of MOSs sensors for detecting volatile organic compounds, toxic gases, and flammable gases. This review systematically examines the synthesis strategies and performance enhancements achieved through MOSs functionalization and composite material integration, emphasizing structure-property relationships, interfacial charge transfer dynamics, and adsorption mechanisms. Finally, the challenges and future directions for the rational design of next-generation MOSs-based gas sensors are outlined, providing critical insights for advancing intelligent gas sensing technologies.

摘要

金属氧化物半导体(MOSs)因其固有优势,如成本效益高、合成简单以及传感纳米器件易于制造等,已成为气体传感技术的关键材料。这些特性使MOSs在工业、环境和生物监测中得到广泛应用。虽然MOSs具有内在的气敏特性,但其有限的活性位点密度和功能多样性限制了灵敏度和选择性,尤其是在复杂的气体环境中。为克服这些限制,人们通过异质结构建、贵金属纳米颗粒负载(如Au、Pt、Ag、Pd)和杂原子掺杂(如Si、Cr)等策略对MOSs进行功能化,开展了大量研究工作。此外,通过将碳基材料或聚合物整合以利用协同相互作用,复合材料已成为增强基于MOSs的气体传感器的有效方法。这些改性扩展了MOSs传感器在检测挥发性有机化合物、有毒气体和可燃气体方面的适用性。本文综述系统地研究了通过MOSs功能化和复合材料整合所实现的合成策略及性能提升,重点强调了结构-性能关系、界面电荷转移动力学和吸附机制。最后,概述了下一代基于MOSs的气体传感器合理设计面临的挑战和未来方向,为推进智能气体传感技术提供了关键见解。

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