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抑制可充电电池阴极材料中锰溶解的界面策略

Interfacial Strategies for Suppression of Mn Dissolution in Rechargeable Battery Cathode Materials.

作者信息

Ren Qingqing, Yuan Yifei, Wang Shun

机构信息

College of Chemistry and Materials Engineering, Wenzhou University, Wenzhou, Zhejiang 325035, China.

Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, Jiangsu 215123, China.

出版信息

ACS Appl Mater Interfaces. 2022 May 25;14(20):23022-23032. doi: 10.1021/acsami.1c20406. Epub 2021 Nov 19.

Abstract

It is urgent to develop high-performance cathode materials for rechargeable batteries to address the globally growing concerns of energy shortage and environmental pollution. Among many candidate materials, Mn-based materials are promising and already used in some commercial batteries. Yet, their applicable future in reversible energy storage is severely plagued by the notorious Mn dissolution behaviors associated with structural instability during long-term cycling. As such, interfacial strategies aiming to protect Mn-based electrodes against Mn dissolution are being widely developed in recent years. A variety of interface-driven designs have been reported to function efficiently in suppressing Mn dissolution, necessitating a timely summary of recent advancements in the field. In this review, various interfaces, including the prebuilt interface and the electrochemically induced interface, to suppress Mn dissolution for Mn-based cathodes are discussed in terms of their fabrication details and functional outcomes. Perspectives for the future of interfacial strategies aiming at Mn dissolution suppression are also shared.

摘要

开发用于可充电电池的高性能阴极材料以应对全球日益增长的能源短缺和环境污染问题迫在眉睫。在众多候选材料中,锰基材料很有前景,并且已经应用于一些商业电池中。然而,它们在可逆能量存储方面的应用前景受到长期循环过程中与结构不稳定相关的臭名昭著的锰溶解行为的严重困扰。因此,近年来旨在保护锰基电极免受锰溶解影响的界面策略得到了广泛发展。据报道,各种界面驱动的设计在抑制锰溶解方面具有高效功能,因此有必要及时总结该领域的最新进展。在这篇综述中,讨论了各种用于抑制锰基阴极锰溶解的界面,包括预构建界面和电化学诱导界面,涉及它们的制备细节和功能效果。还分享了旨在抑制锰溶解的界面策略的未来展望。

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