Nuclear and Energy Research Institute, São Paulo, Brazil.
Department of Physics, COMSAT University, Lahore, Pakistan.
Med Gas Res. 2025 Mar 1;15(1):1-9. doi: 10.4103/mgr.MEDGASRES-D-23-00056. Epub 2024 Jun 26.
Plasmonic nanostructures have emerged as indispensable components in the construction of high-performance gas sensors, playing a pivotal role across diverse applications, including industrial safety, medical diagnostics, and environmental monitoring. This review paper critically examines seminal research that underscores the remarkable efficacy of plasmonic materials in achieving superior attributes such as heightened sensitivity, selectivity, and rapid response times in gas detection. Offering a synthesis of pivotal studies, this review aims to furnish a comprehensive discourse on the contemporary advancements within the burgeoning domain of plasmonic gas sensing. The featured investigations meticulously scrutinize various plasmonic structures and their applications in detecting gases like carbon monoxide, carbon dioxide, hydrogen and nitrogen dioxide. The discussed frameworks encompass cutting-edge approaches, spanning ideal absorbers, surface plasmon resonance sensors, and nanostructured materials, thereby elucidating the diverse strategies employed for advancing plasmonic gas sensing technologies.
等离子体纳米结构已成为高性能气体传感器构建中不可或缺的组成部分,在包括工业安全、医疗诊断和环境监测在内的各种应用中发挥着关键作用。本文批判性地回顾了强调等离子体材料在实现气体检测中更高灵敏度、选择性和快速响应时间等卓越特性方面的显著效果的重要研究。该综述综合了关键研究,旨在提供关于等离子体气体传感领域新兴领域的综合论述。所介绍的研究仔细研究了各种等离子体结构及其在检测一氧化碳、二氧化碳、氢气和二氧化氮等气体中的应用。讨论的框架包括前沿方法,涵盖理想吸收器、表面等离子体共振传感器和纳米结构材料,从而阐明了用于推进等离子体气体传感技术的各种策略。