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缺陷工程:它能否减轻可充电镁电池阴极材料中镁的强库仑效应?

Defect Engineering: Can it Mitigate Strong Coulomb Effect of Mg in Cathode Materials for Rechargeable Magnesium Batteries?

作者信息

Fan Zhengqing, Li Ruimin, Zhang Xin, Zhao Wanyu, Pan Zhenghui, Yang Xiaowei

机构信息

School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.

School of Chemistry and Chemical Engineering, Taiyuan University of Technology, Taiyuan, 030024, People's Republic of China.

出版信息

Nanomicro Lett. 2024 Sep 20;17(1):4. doi: 10.1007/s40820-024-01495-1.

Abstract

Rechargeable magnesium batteries (RMBs) have been considered a promising "post lithium-ion battery" system to meet the rapidly increasing demand of the emerging electric vehicle and grid energy storage market. However, the sluggish diffusion kinetics of bivalent Mg in the host material, related to the strong Coulomb effect between Mg and host anion lattices, hinders their further development toward practical applications. Defect engineering, regarded as an effective strategy to break through the slow migration puzzle, has been validated in various cathode materials for RMBs. In this review, we first thoroughly understand the intrinsic mechanism of Mg diffusion in cathode materials, from which the key factors affecting ion diffusion are further presented. Then, the positive effects of purposely introduced defects, including vacancy and doping, and the corresponding strategies for introducing various defects are discussed. The applications of defect engineering in cathode materials for RMBs with advanced electrochemical properties are also summarized. Finally, the existing challenges and future perspectives of defect engineering in cathode materials for the overall high-performance RMBs are described.

摘要

可充电镁电池(RMBs)被认为是一种很有前景的“后锂离子电池”系统,以满足新兴电动汽车和电网储能市场迅速增长的需求。然而,二价镁在主体材料中的扩散动力学缓慢,这与镁和主体阴离子晶格之间强烈的库仑效应有关,阻碍了它们向实际应用的进一步发展。缺陷工程被认为是突破缓慢迁移难题的有效策略,已在各种用于可充电镁电池的阴极材料中得到验证。在这篇综述中,我们首先深入了解镁在阴极材料中扩散的内在机制,并在此基础上进一步介绍影响离子扩散的关键因素。然后,讨论了有意引入的缺陷(包括空位和掺杂)的积极作用以及引入各种缺陷的相应策略。还总结了缺陷工程在具有先进电化学性能的可充电镁电池阴极材料中的应用。最后,描述了阴极材料中缺陷工程在实现整体高性能可充电镁电池方面面临的现有挑战和未来前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd07/11415563/9595216ad75e/40820_2024_1495_Fig1_HTML.jpg

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