Sun Zhengxiang, Wang Rui, Matulis Vitaly Edwardovich, Vladimir Korchak
School of Environmental Science and Engineering, Shandong University, Qingdao 266237, China.
Scientific-Research Institute for Physical Chemical Problems, The Belarusian State University, 220006 Minsk, Belarus.
Molecules. 2024 Mar 14;29(6):1286. doi: 10.3390/molecules29061286.
As traditional fossil fuel energy development faces significant challenges, two-dimensional layered materials have become increasingly popular in various fields and have generated widespread research interest. MXene is an exceptional catalytic material that is typically integrated into functional composite materials with other substances to enhance its catalytic-reaction performance. Improving the thermal stability, electrical conductivity, and electrochemical activity, as well as enhancing the specific surface structure, can make the material an excellent catalyst for photoelectrocatalysis and energy-regeneration reactions. The article mainly outlines the structural characteristics, preparation methods, and applications of MXene in the field of catalysis. This text highlights the latest progress and performance comparison of MXene-based catalytic functional materials in various fields such as electrochemical conversion, photocatalysis, renewable energy, energy storage, and carbon capture and conversion. It also proposes future prospects and discusses the current bottlenecks and challenges in the development of MXene-based catalytic materials.
随着传统化石燃料能源开发面临重大挑战,二维层状材料在各个领域越来越受欢迎,并引发了广泛的研究兴趣。MXene是一种特殊的催化材料,通常与其他物质集成到功能复合材料中以提高其催化反应性能。提高热稳定性、电导率和电化学活性,以及增强比表面结构,可以使该材料成为光电催化和能量再生反应的优异催化剂。本文主要概述了MXene在催化领域的结构特征、制备方法和应用。本文重点介绍了基于MXene的催化功能材料在电化学转换、光催化、可再生能源、储能以及碳捕获与转换等各个领域的最新进展和性能比较。还提出了未来前景,并讨论了基于MXene的催化材料开发中当前的瓶颈和挑战。