MXenes from MAX phases: synthesis, hybridization, and advances in supercapacitor applications

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY RSC Advances Pub Date : 2025-03-24 DOI:10.1039/D5RA00271K
Tamal K. Paul, Md. Abdul Khaleque, Md. Romzan Ali, Mohamed Aly Saad Aly, Md. Sadek Bacchu, Saidur Rahman and Md. Zaved H. Khan
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Abstract

MXenes, which are essentially 2D layered structures composed of transition metal carbides and nitrides obtained from MAX phases, have gained substantial interest in the field of energy storage, especially for their potential as electrodes in supercapacitors due to their unique properties such as high electrical conductivity, large surface area, and tunable surface chemistry that enable efficient charge storage. However, their practical implementation is hindered by challenges like self-restacking, oxidation, and restricted ion transport within the layered structure. This review focuses on the synthesis process of MXenes from MAX phases, highlighting the different etching techniques employed and how they significantly influence the resulting MXene structure and subsequent electrochemical performance. It further highlights the hybridization of MXenes with carbon-based materials, conducting polymers, and metal oxides to enhance charge storage capacity, cyclic stability, and ion diffusion. The influence of dimensional structuring (1D, 2D, and 3D architectures) on electrochemical performance is critically analyzed, showcasing their role in optimizing electrolyte accessibility and energy density. Additionally, the review highlights that while MXene-based supercapacitors have seen significant advancements in terms of energy storage efficiency through various material combinations and fabrication techniques, key challenges like large-scale production, long-term stability, and compatibility with electrolytes still need to be addressed. Future research should prioritize developing scalable synthesis methods, optimizing hybrid material interactions, and investigating new electrolyte systems to fully realize the potential of MXene-based supercapacitors for commercial applications. This comprehensive review provides a roadmap for researchers aiming to bridge the gap between laboratory research and commercial supercapacitor applications.

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来自MAX相的MXenes:合成、杂化和超级电容器应用进展
MXenes本质上是由过渡金属碳化物和氮化物组成的二维层状结构,从MAX相中获得,在能量存储领域获得了极大的兴趣,特别是由于其独特的性能,如高导电性,大表面积和可调的表面化学,使其能够高效存储电荷,因此它们具有作为超级电容器电极的潜力。然而,它们的实际实施受到诸如自堆叠、氧化和层状结构内限制离子传输等挑战的阻碍。本文重点介绍了从MAX相合成MXene的过程,重点介绍了所采用的不同蚀刻技术以及它们如何显著影响所得到的MXene结构和随后的电化学性能。它进一步强调了MXenes与碳基材料、导电聚合物和金属氧化物的杂化,以增强电荷存储能力、循环稳定性和离子扩散。维度结构(一维、二维和三维结构)对电化学性能的影响进行了批判性分析,展示了它们在优化电解质可及性和能量密度方面的作用。此外,该综述强调,尽管基于mxene的超级电容器通过各种材料组合和制造技术在储能效率方面取得了重大进展,但仍需要解决大规模生产、长期稳定性和与电解质的兼容性等关键挑战。未来的研究应优先考虑开发可扩展的合成方法,优化混合材料相互作用,并研究新的电解质体系,以充分实现基于mxene的超级电容器的商业应用潜力。这篇全面的综述为旨在弥合实验室研究和商业超级电容器应用之间差距的研究人员提供了一个路线图。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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