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掺杂 MXenes:作用机制、合成及应用。

Element-Doped Mxenes: Mechanism, Synthesis, and Applications.

机构信息

School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing, 210044, China.

Australian Centre for Advanced Photovoltaics, School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Sydney, 2052, Australia.

出版信息

Small. 2022 Jun;18(25):e2201740. doi: 10.1002/smll.202201740. Epub 2022 May 9.

Abstract

Heteroatom doping can endow MXenes with various new or improved electromagnetic, physicochemical, optical, and structural properties. This greatly extends the arsenal of MXenes materials and their potential for a spectrum of applications. This article comprehensively and critically discusses the syntheses, properties, and emerging applications of the growing family of heteroatom-doped MXenes materials. First, the doping strategies, synthesis methods, and theoretical simulations of high-performance MXenes materials are summarized. In order to achieve high-performance MXenes materials, the mechanism of atomic element doping from three aspects of lattice optimization, functional substitution, and interface modification is analyzed and summarized, aiming to provide clues for developing new and controllable synthetic routes. The mechanisms underlying their advantageous uses for energy storage, catalysis, sensors, environmental purification and biomedicine are highlighted. Finally, future opportunities and challenges for the study and application of multifunctional high-performance MXenes are presented. This work could open up new prospects for the development of high-performance MXenes.

摘要

杂原子掺杂可以赋予 MXenes 各种新的或改进的电磁、物理化学、光学和结构性能。这极大地扩展了 MXenes 材料的武器库及其在一系列应用中的潜力。本文全面而批判性地讨论了日益增长的杂原子掺杂 MXenes 材料家族的合成、性质和新兴应用。首先,总结了高性能 MXenes 材料的掺杂策略、合成方法和理论模拟。为了实现高性能的 MXenes 材料,从晶格优化、功能取代和界面修饰三个方面分析和总结了原子元素掺杂的机制,旨在为开发新的和可控的合成途径提供线索。强调了它们在储能、催化、传感器、环境净化和生物医学方面的优势应用的机制。最后,提出了多功能高性能 MXenes 的研究和应用的未来机遇和挑战。这项工作为高性能 MXenes 的发展开辟了新的前景。

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