Research progress on the surface/interface modification of high-voltage lithium oxide cathode materials

Yong-Li Heng, Zhenyi Gu, Jin-Zhi Guo, Xiaotong Yang, Xin‐Xin Zhao, Xing Wu
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引用次数: 8

Abstract

Lithium oxides are the most promising cathode candidates for high-performance lithium-ion batteries (LIBs), owing to their high theoretical capacity and average working voltage, which are conducive to achieving the ultimate goal of upgrading energy density. By raising the upper limit of the cutoff voltage, we may be able to further improve both the practical capacity and average voltage of lithium oxide cathodes. Unfortunately, the high-voltage operation of these cathodes results in significant challenges, namely, reduced surface structural stability and interfacial stability with electrolytes, thus degrading the electrochemical performance. Accordingly, surface/interface modification strategies, including surface coating, electrolyte regulation, binder design, and special surface treatments, are systematically summarized and comprehensively analyzed for high-voltage lithium oxide cathode materials in this review. Furthermore, the corresponding modification mechanisms are discussed in detail to better grasp the internal mechanisms for the enhanced electrochemical performance. Based on recent progress, we further propose predictable development directions for high-performance LIBs in future practical applications. This review provides new insights into various high-voltage lithium oxide cathodes and their universal surface/interface modification strategies towards advanced next-generation LIBs with high energy and power density and long cycle life.
高压氧化锂正极材料表面/界面改性研究进展
锂氧化物具有较高的理论容量和平均工作电压,有利于实现能量密度提升的最终目标,是高性能锂离子电池(LIBs)最有前途的正极候选者。通过提高截止电压的上限,可以进一步提高氧化锂阴极的实用容量和平均电压。不幸的是,这些阴极的高压工作带来了重大挑战,即降低了表面结构稳定性和与电解质的界面稳定性,从而降低了电化学性能。因此,本文系统总结和全面分析了高压氧化锂正极材料的表面/界面改性策略,包括表面涂层、电解质调节、粘结剂设计和特殊表面处理。此外,还详细讨论了相应的改性机理,以便更好地掌握电化学性能增强的内在机理。基于最近的研究进展,我们进一步提出了高性能lib在未来实际应用中可预测的发展方向。本文综述了各种高压氧化锂阴极及其通用表面/界面改性策略,为实现高能量和功率密度、长循环寿命的先进下一代锂离子电池提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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