Radhakrishnan Sithara, Rout Chandra Sekhar
Centre for Nano and Material Sciences, Jain (Deemed-to-be University) Jain Global Campus, Kanakapura Bangalore 562112 Karnataka India
Nanoscale Adv. 2023 Aug 15;5(18):4649-4669. doi: 10.1039/d3na00275f. eCollection 2023 Sep 12.
MXenes with distinctive structures, good electrical conductivity and abundant functional groups have shown great potential in the fabrication of high performance gas sensors. Since the sensing mechanism of MXene-based gas sensors often involves a surface-dominant process, they can work at room temperature. In this regard, a significant amount of research has been carried out on MXene-based room temperature gas sensors and they can be viewed as one of the possible materials for NO sensing applications in the future. In this review, we focus on the most recent research and improvements in pure MXenes and their nanocomposites for NO gas sensing applications. First, we have explored the mechanisms involved in MXenes for NO gas sensing. Following that, other ways to tune the MXene sensing performance are investigated, including nanocomposite formation with metal oxides, polymers, and other 2D materials. A comparative analysis of the RT NO sensor performance based on MXenes and their hybrids is provided. We also discuss the major challenges of using MXene-related materials and the areas that can further advance in the future for the development of high-performance room temperature NO gas sensors.
具有独特结构、良好导电性和丰富官能团的MXenes在高性能气体传感器的制造中显示出巨大潜力。由于基于MXene的气体传感器的传感机制通常涉及表面主导过程,因此它们可以在室温下工作。在这方面,已经对基于MXene的室温气体传感器进行了大量研究,并且它们可以被视为未来用于NO传感应用的可能材料之一。在这篇综述中,我们重点关注纯MXenes及其纳米复合材料在NO气体传感应用方面的最新研究和改进。首先,我们探讨了MXenes用于NO气体传感的机制。随后,研究了其他调节MXene传感性能的方法,包括与金属氧化物、聚合物和其他二维材料形成纳米复合材料。提供了基于MXenes及其杂化物的室温NO传感器性能的比较分析。我们还讨论了使用与MXene相关材料的主要挑战以及未来在高性能室温NO气体传感器开发中可以进一步推进的领域。