Get 20M+ Full-Text Papers For Less Than $1.50/day. Start a 14-Day Trial for You or Your Team.

Learn More →

Element‐Doped Mxenes: Mechanism, Synthesis, and Applications

Element‐Doped Mxenes: Mechanism, Synthesis, and Applications 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. http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Small Wiley

Element‐Doped Mxenes: Mechanism, Synthesis, and Applications

Loading next page...
 
/lp/wiley/element-doped-mxenes-mechanism-synthesis-and-applications-lfx0RKcoVl

References (310)

Publisher
Wiley
Copyright
© 2022 Wiley‐VCH GmbH
ISSN
1613-6810
eISSN
1613-6829
DOI
10.1002/smll.202201740
Publisher site
See Article on Publisher Site

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.

Journal

SmallWiley

Published: Jun 1, 2022

Keywords: atomic element doping; doping strategies; energy storage; heteroatom‐doped MXenes; synthesis methods

There are no references for this article.