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一种用于合成具有优异电化学性能的超高镍单晶LiNiCoMnO的熔盐法,该材料作为锂离子电池的阴极材料。

A Molten-Salt Method to Synthesize Ultrahigh-Nickel Single-Crystalline LiNi Co Mn O with Superior Electrochemical Performance as Cathode Material for Lithium-Ion Batteries.

作者信息

Lv Fei, Zhang Yimin, Wu Mengtao, Gu Yuzong

机构信息

International Joint Research Laboratory of New Energy Materials and Devices of Henan Province, School of Physics and Electronics, Henan University, Kaifeng, 475004, P. R. China.

Tianjin B&M Science and Technology Co., Ltd., Tianjin, 300384, P. R. China.

出版信息

Small. 2022 Jul;18(28):e2201946. doi: 10.1002/smll.202201946. Epub 2022 Jun 14.

Abstract

Ni-rich layered oxides have been intensively considered as promising cathode materials for next-generation Li-ion batteries. Nevertheless, the performance degradation caused by intergranular cracks and electrode/electrolyte interface parasitic reactions restricts their further application. Compared with secondary particles, single-crystal (SC) materials have better mechanical integrity and cycling stability. However, the preparation of ultrahigh-nickel layered SC cathode still remains a serious challenge. Herein, a novel LiOH-LiNO -H BO molten-salt method is proposed to synthesize SC LiNi Co Mn O with considerable crystallinity and uniformity. The critical impacts of calcination temperature and boric acid on the microstructure and electrochemical property of Ni-rich layered oxides are systematically investigated. The results show that the crystal growth is promoted and the stability of crystal structure is improved by this synthesis method. In particular, the optimal electrode demonstrates a superior initial discharge capacity of 214.8 mAh g with a high capacity retention of 86.3% over 300 cycles as tested by pouch-type full cells at 45 ºC. This work not only prepares an ultrahigh-nickel layered CS cathode with superior electrochemical performances, but also provides a feasible method for the synthesis of other CS layered cathode materials.

摘要

富镍层状氧化物被广泛认为是下一代锂离子电池有前景的正极材料。然而,晶间裂纹和电极/电解质界面寄生反应导致的性能退化限制了它们的进一步应用。与二次颗粒相比,单晶(SC)材料具有更好的机械完整性和循环稳定性。然而,超高镍层状SC正极的制备仍然是一个严峻的挑战。在此,提出了一种新颖的LiOH-LiNO₃-H₃BO₃熔盐法来合成具有相当结晶度和均匀性的SC LiNi₀.₈Co₀.₁Mn₀.₁O₂。系统研究了煅烧温度和硼酸对富镍层状氧化物微观结构和电化学性能的关键影响。结果表明,该合成方法促进了晶体生长并提高了晶体结构的稳定性。特别是,通过软包型全电池在45℃下测试,最佳电极表现出214.8 mAh g的优异初始放电容量,在300次循环中具有86.3%的高容量保持率。这项工作不仅制备了具有优异电化学性能的超高镍层状CS正极,还为合成其他CS层状正极材料提供了一种可行的方法。

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