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通过层内锂/锰无序化制备具有菱面体对称性的高性能富锂锂锰氧化物正极材料。

A High-Performance Li-Mn-O Li-rich Cathode Material with Rhombohedral Symmetry via Intralayer Li/Mn Disordering.

作者信息

Song Jin, Li Biao, Chen Yuyang, Zuo Yuxuan, Ning Fanghua, Shang Huaifang, Feng Guang, Liu Na, Shen Chongheng, Ai Xinping, Xia Dingguo

机构信息

Beijing Key Laboratory of Theory and Technology for Advanced Batteries Materials, College of Engineering, Peking University, Beijing, 100871, P. R. China.

Contemporary Amperex Technology Co., Ningde, 352100, P. R. China.

出版信息

Adv Mater. 2020 Apr;32(16):e2000190. doi: 10.1002/adma.202000190. Epub 2020 Mar 4.

Abstract

The search for new high-performance and low-cost cathode materials for Li-ion batteries is a challenging issue in materials research. Commonly used cobalt- or nickel-based cathodes suffer from limited resources and safety problems that greatly restrict their large-scale application, especially for electric vehicles and large-scale energy storage. Here, a novel Li-Mn-O Li-rich cathode material with symmetry is developed via intralayer Li/Mn disordering in the Mn-layer. Due to the special atomic arrangement and higher symmetry with respect to the C2/m symmetry, the oxygen redox activity is modulated and the Li in the Li-layer is preferentially thermodynamically extracted from the crystal structure instead of Li in the Mn-layer. The as-obtained material delivers a reversible capacity of over 300 mAh g at 25 mA g and rate capability of up to 260 mAh g at 250 mA g within 2.0-4.8 V. The excellent performance is attributed to its highly structural reversibility, mitigation of Jahn-Teller distortion, lower bandgap, and faster Li-ion 2D channels during the lithium-ion de/intercalation process. This material is not only a promising cathode material candidate but also raises new possibilities for the design of low-cost and high-performance cathode materials.

摘要

寻找用于锂离子电池的新型高性能低成本阴极材料是材料研究中的一个具有挑战性的问题。常用的钴基或镍基阴极存在资源有限和安全问题,这极大地限制了它们的大规模应用,特别是在电动汽车和大规模储能领域。在此,通过Mn层内的层内Li/Mn无序化开发了一种具有 对称性的新型富锂Li-Mn-O阴极材料。由于特殊的原子排列以及相对于C2/m对称性更高的 对称性,氧的氧化还原活性得到调制,并且Li层中的Li优先从晶体结构中热力学提取,而不是Mn层中的Li。所获得的材料在25 mA g下具有超过300 mAh g的可逆容量,在2.0 - 4.8 V范围内,在250 mA g下的倍率性能高达260 mAh g。优异的性能归因于其高度的结构可逆性、Jahn-Teller畸变的减轻、较低的带隙以及锂离子脱嵌/嵌入过程中更快的锂离子二维通道。这种材料不仅是一种有前途的阴极材料候选物,而且为低成本高性能阴极材料的设计带来了新的可能性。

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