Porous materials as effective chemiresistive gas sensors

IF 39 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Akashdeep Sharma, Sunil Babu Eadi, Hemanth Noothalapati, Michal Otyepka, Hi-Deok Lee and Kolleboyina Jayaramulu
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Abstract

Chemiresistive gas sensors (CGSs) have revolutionized the field of gas sensing by providing a low-power, low-cost, and highly sensitive means of detecting harmful gases. This technology works by measuring changes in the conductivity of materials when they interact with a testing gas. While semiconducting metal oxides and two-dimensional (2D) materials have been used for CGSs, they suffer from poor selectivity to specific analytes in the presence of interfering gases and require high operating temperatures, resulting in high signal-to-noise ratios. However, nanoporous materials have emerged as a promising alternative for CGSs due to their high specific surface area, unsaturated metal actives, and density of three-dimensional inter-connected conductive and pendant functional groups. Porous materials have demonstrated excellent response and recovery times, remarkable selectivity, and the ability to detect gases at extremely low concentrations. Herein, our central emphasis is on all aspects of CGSs, with a primary focus on the use of porous materials. Further, we discuss the basic sensing mechanisms and parameters, different types of popular sensing materials, and the critical explanations of various mechanisms involved throughout the sensing process. We have provided examples of remarkable performance demonstrated by sensors using these materials. In addition to this, we compare the performance of porous materials with traditional metal-oxide semiconductors (MOSs) and 2D materials. Finally, we discussed future aspects, shortcomings, and scope for improvement in sensing performance, including the use of metal–organic frameworks (MOFs), covalent-organic frameworks (COFs), and porous organic polymers (POPs), as well as their hybrid counterparts. Overall, CGSs using porous materials have the potential to address a wide range of applications, including monitoring water quality, detecting harmful chemicals, improving surveillance, preventing natural disasters, and improving healthcare.

Abstract Image

Abstract Image

多孔材料作为有效的化学电阻式气体传感器。
化学电阻式气体传感器(CGS)为检测有害气体提供了一种低功耗、低成本和高灵敏度的方法,从而彻底改变了气体检测领域。这种技术的工作原理是测量材料与检测气体相互作用时的电导率变化。虽然半导体金属氧化物和二维(2D)材料已被用于 CGS,但在存在干扰气体的情况下,它们对特定分析物的选择性较差,而且需要较高的工作温度,导致信噪比较高。然而,纳米多孔材料因其高比表面积、不饱和金属活性以及三维相互连接的导电和悬垂功能基团密度,已成为 CGS 的一种有前途的替代材料。多孔材料已显示出卓越的响应和恢复时间、显著的选择性以及在极低浓度下检测气体的能力。在本文中,我们将重点讨论 CGS 的各个方面,主要侧重于多孔材料的使用。此外,我们还讨论了基本传感机制和参数、不同类型的常用传感材料,以及整个传感过程中所涉及的各种机制的重要解释。我们举例说明了使用这些材料的传感器所表现出的卓越性能。此外,我们还比较了多孔材料与传统金属氧化物半导体(MOS)和二维材料的性能。最后,我们讨论了传感性能的未来方面、不足和改进范围,包括金属有机框架 (MOF)、共价有机框架 (COF) 和多孔有机聚合物 (POP) 及其混合对应物的使用。总之,使用多孔材料的 CGS 有潜力解决广泛的应用问题,包括监测水质、检测有害化学物质、改善监控、预防自然灾害和改善医疗保健。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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