MXene 关键复合材料:气体传感器的新领域。

IF 36.3 1区 材料科学 Q1 Engineering
Yitong Wang, Yuhua Wang, Min Jian, Qinting Jiang, Xifei Li
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引用次数: 0

摘要

随着科学技术的发展,工业生产规模不断扩大,工业生产中使用的气体原料和生产过程中产生的气体种类和数量也在不断增加。这些气体包括易燃易爆气体,甚至含有有毒气体。因此,气体传感器对这些气体进行快速、准确的检测和监控是非常重要和必要的。近年来,一种名为 MXene 的新型二维材料在各种应用领域引起了广泛关注。它们具有丰富的表面官能团和位点、优异的电流传导性、可调的表面化学性质和出色的稳定性,使其在气体传感器领域具有广阔的应用前景。自 MXene 材料诞生以来,研究人员利用其高效便捷的溶液蚀刻制备方法、高度的灵活性以及 MXene 与其他材料的易功能化等特点,制备出了用于气体传感的复合材料。这开启了高性能气体传感材料的新篇章,为先进传感器的研究提供了一种新方法。然而,以往有关基于 MXene 的气体传感复合材料的综述仅关注气体传感的性能,没有系统地解释不同气体产生的气体传感机理,也没有总结和预测基于 MXene 的复合材料的优缺点。本文回顾了 MXene 基复合材料在气体传感领域应用的最新进展。首先简要介绍了制备气体传感装置结构的常用方法,然后介绍了与气体传感性能相关的 MXene 的关键属性。本文重点介绍了用于气体传感的基于 MXene 的复合材料的性能,如 MXene/石墨烯、MXene/金属氧化物、MXene/过渡金属硫化物 (TMD)、MXene/金属有机框架 (MOF)、MXene/聚合物。报告总结了 MXene 复合材料与不同复合材料的优缺点,并讨论了基于 MXene 的复合材料对不同气体的可能气体传感机制。最后,介绍并讨论了基于 MXene 的复合材料在气体传感方面的未来发展方向和进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

MXene Key Composites: A New Arena for Gas Sensors.

MXene Key Composites: A New Arena for Gas Sensors.

With the development of science and technology, the scale of industrial production continues to grow, and the types and quantities of gas raw materials used in industrial production and produced during the production process are also constantly increasing. These gases include flammable and explosive gases, and even contain toxic gases. Therefore, it is very important and necessary for gas sensors to detect and monitor these gases quickly and accurately. In recent years, a new two-dimensional material called MXene has attracted widespread attention in various applications. Their abundant surface functional groups and sites, excellent current conductivity, tunable surface chemistry, and outstanding stability make them promising for gas sensor applications. Since the birth of MXene materials, researchers have utilized the efficient and convenient solution etching preparation, high flexibility, and easily functionalize MXene with other materials to prepare composites for gas sensing. This has opened a new chapter in high-performance gas sensing materials and provided a new approach for advanced sensor research. However, previous reviews on MXene-based composite materials in gas sensing only focused on the performance of gas sensing, without systematically explaining the gas sensing mechanisms generated by different gases, as well as summarizing and predicting the advantages and disadvantages of MXene-based composite materials. This article reviews the latest progress in the application of MXene-based composite materials in gas sensing. Firstly, a brief summary was given of the commonly used methods for preparing gas sensing device structures, followed by an introduction to the key attributes of MXene related to gas sensing performance. This article focuses on the performance of MXene-based composite materials used for gas sensing, such as MXene/graphene, MXene/Metal oxide, MXene/Transition metal sulfides (TMDs), MXene/Metal-organic framework (MOF), MXene/Polymer. It summarizes the advantages and disadvantages of MXene composite materials with different composites and discusses the possible gas sensing mechanisms of MXene-based composite materials for different gases. Finally, future directions and inroads of MXenes-based composites in gas sensing are presented and discussed.

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来源期刊
Nano-Micro Letters
Nano-Micro Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
32.60
自引率
4.90%
发文量
981
审稿时长
1.1 months
期刊介绍: Nano-Micro Letters is a peer-reviewed, international, interdisciplinary, and open-access journal published under the SpringerOpen brand. Nano-Micro Letters focuses on the science, experiments, engineering, technologies, and applications of nano- or microscale structures and systems in various fields such as physics, chemistry, biology, material science, and pharmacy.It also explores the expanding interfaces between these fields. Nano-Micro Letters particularly emphasizes the bottom-up approach in the length scale from nano to micro. This approach is crucial for achieving industrial applications in nanotechnology, as it involves the assembly, modification, and control of nanostructures on a microscale.
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