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表面改性驱动的LiMnNiCoO正极初始库仑效率和倍率性能提升

Surface Modification Driven Initial Coulombic Efficiency and Rate Performance Enhancement of Li Mn Ni Co O Cathode.

作者信息

Li Wanyun, Zhao Bangchuan, Bai Jin, Wang Peiyao, Mao Yunjie, Xiao Ke, Zhu Xuebin, Sun Yuping

机构信息

Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei, 230031, China.

College of Chemistry and Materials Engineering, Anhui Science and Technology University, Fengyang, 233100, China.

出版信息

ChemSusChem. 2024 Jan 22;17(2):e202301281. doi: 10.1002/cssc.202301281. Epub 2023 Nov 3.

Abstract

Due to its high energy density and low cost, Li-rich Mn-based layered oxides are considered potential cathode materials for next generation Li-ion batteries. However, they still suffer from the serious obstacle of low initial Coulombic efficiency, which is detrimental to their practical application. Here, an efficient surface modification method via NH H PO assisted pyrolysis is performed to improve the Coulombic efficiency of Li Mn Ni Co O , where appropriate oxygen vacancies, Li PO and spinel phase are synchronously generated in the surface layer of LMR microspheres. Under the synergistic effect of the oxygen vacancies and spinel phase, the unavoidable oxygen release in the cycling process was effectively suppressed. Moreover, the induced Li PO nanolayer could boost the lithium-ion diffusion and mitigate the dissolution of transition metal ions, especially manganese ions, in the material. The optimally modified sample yielded an impressive initial Coulombic efficiency and outstanding rate performance.

摘要

由于其高能量密度和低成本,富锂锰基层状氧化物被认为是下一代锂离子电池的潜在阴极材料。然而,它们仍然面临着初始库仑效率低这一严重障碍,这对其实际应用不利。在此,通过磷酸二氢铵辅助热解进行了一种有效的表面改性方法,以提高LiMnNiCoO的库仑效率,其中在LMR微球的表面层中同步产生了适当的氧空位、Li₃PO₄和尖晶石相。在氧空位和尖晶石相的协同作用下,有效地抑制了循环过程中不可避免的氧释放。此外,诱导产生的Li₃PO₄纳米层可以促进锂离子扩散,并减轻过渡金属离子,尤其是锰离子在材料中的溶解。经过最佳改性的样品具有令人印象深刻的初始库仑效率和出色的倍率性能。

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