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预锂化:推动下一代锂离子电池实际应用的关键策略。

Prelithiation: A Crucial Strategy for Boosting the Practical Application of Next-Generation Lithium Ion Battery.

作者信息

Wang Fei, Wang Bo, Li Jingxuan, Wang Bin, Zhou Yu, Wang Dianlong, Liu Huakun, Dou Shixue

机构信息

MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, 150001 Harbin, China.

CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, China.

出版信息

ACS Nano. 2021 Feb 23;15(2):2197-2218. doi: 10.1021/acsnano.0c10664. Epub 2021 Feb 11.

Abstract

With the urgent market demand for high-energy-density batteries, the alloy-type or conversion-type anodes with high specific capacity have gained increasing attention to replace current low-specific-capacity graphite-based anodes. However, alloy-type and conversion-type anodes have large initial irreversible capacity compared with graphite-based anodes, which consume most of the Li in the corresponding cathode and severely reduces the energy density of full cells. Therefore, for the practical application of these high-capacity anodes, it is urgent to develop a commercially available prelithiation technique to compensate for their large initial irreversible capacity. At present, various prelithiation methods for compensating the initial irreversible capacity of the anode have been reported, but due to their respective shortcomings, large-scale commercial applications have not yet been achieved. In this review, we have systematically summarized and analyzed the advantages and challenges of various prelithiation methods, providing enlightenment for the further development of each prelithiation strategy toward commercialization and thus facilitating the practical application of high-specific-capacity anodes in the next-generation high-energy-density lithium-ion batteries.

摘要

随着市场对高能量密度电池的迫切需求,具有高比容量的合金型或转换型负极越来越受到关注,以取代目前低比容量的石墨基负极。然而,与石墨基负极相比,合金型和转换型负极具有较大的初始不可逆容量,这会消耗相应正极中的大部分锂,并严重降低全电池的能量密度。因此,对于这些高容量负极的实际应用,迫切需要开发一种可商业化的预锂化技术来补偿其较大的初始不可逆容量。目前,已经报道了各种用于补偿负极初始不可逆容量的预锂化方法,但由于它们各自的缺点,尚未实现大规模商业应用。在这篇综述中,我们系统地总结和分析了各种预锂化方法的优点和挑战,为每种预锂化策略进一步走向商业化发展提供启示,从而促进高比容量负极在下一代高能量密度锂离子电池中的实际应用。

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