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高能量富镍层状氧化物阴极的表面/界面结构与化学:进展与展望

Surface/Interfacial Structure and Chemistry of High-Energy Nickel-Rich Layered Oxide Cathodes: Advances and Perspectives.

作者信息

Hou Peiyu, Yin Jiangmei, Ding Meng, Huang Jinzhao, Xu Xijin

机构信息

School of Physics and Technology, University of Jinan, Jinan, 250022, Shandong Province, China.

出版信息

Small. 2017 Dec;13(45). doi: 10.1002/smll.201701802. Epub 2017 Oct 4.

Abstract

The urgent prerequisites of high energy-density and superior electrochemical properties have been the main inspiration for the advancement of cathode materials in lithium-ion batteries (LIBs) in the last two decades. Nickel-rich layered transition-metal oxides with large reversible capacity as well as high operating voltage are considered as the most promising candidate for next-generation LIBs. Nonetheless, the poor long-term cycle-life and inferior thermal stability have limited their broadly practical applications. In the research of LIBs, it is observed that surface/interfacial structure and chemistry play significant roles in the performance of cathode cycling. This is due to the fact that they are basically responsible for the reversibility of Li intercalation/deintercalation chemistries while dictating the kinetics of the general cell reactions. In this Review, the surface/interfacial structure and chemistry of nickel-rich layered cathodes involving structural defects, redox mechanisms, structural evolutions, side-reactions among others are initially demonstrated. Recent advancements in stabilizing the surface/interfacial structure and chemistry of nickel-rich cathodes by surface modification, core-shell/concentration-gradient structure, foreign-ion substitution, hybrid surface, and electrolyte additive are presented. Then lastly, the remaining challenges such as the fundamental studies and commercialized applications, as well as the future research directions are discussed.

摘要

在过去二十年中,高能量密度和优异电化学性能的迫切需求一直是推动锂离子电池(LIBs)正极材料发展的主要动力。具有高可逆容量和高工作电压的富镍层状过渡金属氧化物被认为是下一代LIBs最有前景的候选材料。然而,较差的长期循环寿命和较低的热稳定性限制了它们的广泛实际应用。在LIBs的研究中,人们观察到表面/界面结构和化学性质对正极循环性能起着重要作用。这是因为它们基本上决定了锂嵌入/脱嵌化学过程的可逆性,同时也决定了整个电池反应的动力学。在本综述中,首先阐述了富镍层状正极的表面/界面结构和化学性质,包括结构缺陷、氧化还原机制、结构演变、副反应等。介绍了通过表面改性、核壳/浓度梯度结构、异质离子取代、混合表面和电解质添加剂来稳定富镍正极表面/界面结构和化学性质的最新进展。最后,讨论了诸如基础研究和商业化应用等剩余挑战以及未来的研究方向。

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