Chen Yan, Li Xiaobo, Zhu Chaotong, Fan Guang, Khademolqorani Sanaz, Banitaba Seyedeh Nooshin
Chemical Engineering School, Xianyang Normal University, Xianyang 712000, China.
Chemical Engineering School, Xianyang Normal University, Xianyang 712000, China.
Talanta. 2024 Dec 1;280:126700. doi: 10.1016/j.talanta.2024.126700. Epub 2024 Aug 24.
Epidemiology and public health concerns have primarily relied on the accurate control of gas pollutants, requiring highly efficient gas sensor devices for detecting hazardous gases. Despite the dedication of many efforts in this era, the precise, continuous scrutiny of gases remains elusive for appropriate gas selectivity, prompt response and recovery time, proper repeatability, as well as low cost. Accordingly, nanostructured architectural sensing cues have received enormous attention toward versatile detection and sensing procedures. As a representational nanostructure, the MXene family has been widely introduced to tailor and augment sensor patterns by providing large surface area, tunable surface chemistry, superior electrical conductivity, chemical stability, compatibility with flexible substrates, and potential for multifunctionality. Additionally, they could be synthesized in various formations of film and layered designs, fibrous membranes, and gel-like structures, creating synergetic effects that can provide superior gas-sensing performance. Herein, the synthesis and benefits of MXene nanosheets as gas-sensitive materials, in tandem with the past-to-present progress of MXene-based gas sensors in the formation of films, fibrous, and gel-like configurations, are comprehensively reviewed. As an in-depth reference, the present overview could shed light on further advancing gas sensor architectures developed based on MXene structures.
流行病学和公共卫生问题主要依赖于对气体污染物的精确控制,这需要高效的气体传感器设备来检测有害气体。尽管在这个时代人们付出了诸多努力,但对于合适的气体选择性、快速的响应和恢复时间、良好的重复性以及低成本而言,对气体进行精确、持续的监测仍然难以实现。因此,纳米结构的传感线索在通用检测和传感程序方面受到了极大关注。作为一种具有代表性的纳米结构,MXene家族已被广泛引入,通过提供大表面积、可调节的表面化学性质、优异的导电性、化学稳定性、与柔性基板的兼容性以及多功能潜力来定制和增强传感器模式。此外,它们可以合成成各种薄膜和分层设计、纤维膜以及凝胶状结构,产生协同效应,从而提供卓越的气敏性能。在此,本文全面综述了MXene纳米片作为气敏材料的合成及其优势,以及基于MXene的气体传感器在薄膜、纤维和凝胶状结构形成方面从过去到现在的进展。作为深入的参考资料,本综述可为进一步推进基于MXene结构开发的气体传感器架构提供启示。