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用于锂离子电池的有机可溶性癸酸改性富镍正极材料LiNiCoMnO

Organo-Soluble Decanoic Acid-Modified Ni-Rich Cathode Material LiNiCoMnO for Lithium-Ion Batteries.

作者信息

Gao Mingyue, Wang Yangyang, Cui Shaolun, Liu Sheng, Gao Xue-Ping, Li Guoran

机构信息

Institute of New Energy Material Chemistry, School of Materials Science and Engineering, Nankai University, Tianjin 300350, China.

出版信息

ACS Appl Mater Interfaces. 2022 Apr 13;14(14):16348-16356. doi: 10.1021/acsami.2c02797. Epub 2022 Mar 30.

Abstract

Ni-rich layered oxides as cathode materials deliver a higher capacity than those used currently, in hopes of improving the energy density of Li-ion batteries. However, the surface residual alkali and the interfacial parasitic reactions caused by the rich nickel bring a series of problems such as surface slurrying, structure deterioration, mechanical fracture, and capacity decay. Herein, different from the common surface coating strategies with inorganics, an organo-soluble acid modification approach is proposed to meet the challenges. For LiNiCoMnO (NCM90), decanoic acid can react with the residual lithium salts on the surface to form an organic lithium salt-dominant modification layer. During cycling, an organic lithium-involved cathode/electrolyte interface (CEI) layer is rapidly formed. Specially, the solubility of decanoic acid in the organic electrolyte makes the CEI layer keep strong interaction with NCM90, thin but effective. Consequently, the modified NCM90 exhibits notable performances in terms of structural stability, mechanical integrity, and capacity retention.

摘要

富镍层状氧化物作为正极材料,其容量高于目前使用的材料,有望提高锂离子电池的能量密度。然而,表面残留碱以及富镍导致的界面寄生反应带来了一系列问题,如表面成浆、结构恶化、机械断裂和容量衰减。在此,不同于常见的无机表面包覆策略,提出了一种有机可溶性酸改性方法来应对这些挑战。对于LiNiCoMnO(NCM90),癸酸可与表面残留的锂盐反应形成以有机锂盐为主的改性层。在循环过程中,会迅速形成一个涉及有机锂的正极/电解质界面(CEI)层。特别地,癸酸在有机电解质中的溶解性使得CEI层与NCM90保持强烈相互作用,薄但有效。因此,改性后的NCM90在结构稳定性、机械完整性和容量保持方面表现出显著性能。

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