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通过离子交换进行深度氟化制备用于锂离子电池的高性能锂锰氧氟层状正极材料。

Heavy Fluorination via Ion Exchange Achieves High-Performance Li-Mn-O-F Layered Cathode for Li-Ion Batteries.

作者信息

Lu Junliang, Cao Bo, Hu Bingwen, Liao Yuxin, Qi Rui, Liu Jiajie, Zuo Changjian, Xu Shenyang, Li Zhibo, Chen Cong, Zhang Mingjian, Pan Feng

机构信息

School of Advanced Materials, Peking University, Shenzhen Graduate School, Shenzhen, 518055, China.

Shanghai Key Laboratory of Magnetic Resonance, State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science, East China Normal University, Shanghai, 200241, China.

出版信息

Small. 2022 Feb;18(6):e2103499. doi: 10.1002/smll.202103499. Epub 2021 Dec 1.

Abstract

Lithium-excess manganese layered oxide Li MnO , attracts much attention as a cathode in Li-ion batteries, due to the low cost and the ultrahigh theoretical capacity (≈460 mA h g ). However, it delivers a low reversible practical capacity (<200 mA h g ) due to the irreversible oxygen redox at high potentials (>4.5 V). Herein, heavy fluorination (9.5%) is successfully implemented in the layered anionic framework of a Li-Mn-O-F (LMOF) cathode through a unique ion-exchange route. F substitution with O stabilizes the layered anionic framework, completely inhibits the O evolution during the first cycle, and greatly enhances the reversibility of oxygen redox, delivering an ultrahigh reversible capacity of 389 mA h g , which is 85% of the theoretical capacity of Li MnO . Moreover, it also induces a thin spinel shell coherently forming on the particle surface, which greatly improves the surface structure stability, making LMOF exhibit a superior cycling stability (a capacity retention of 91.8% after 120 cycles at 50 mA g ) and excellent rate capability. These findings stress the importance of stabilizing the anionic framework in developing high-performance low-cost cathodes for next-generation Li-ion batteries.

摘要

富锂锰层状氧化物LiMnO,因其低成本和超高理论容量(≈460 mA h g)而作为锂离子电池的正极备受关注。然而,由于在高电位(>4.5 V)下存在不可逆的氧氧化还原反应,其可逆实际容量较低(<200 mA h g)。在此,通过独特的离子交换途径,在Li-Mn-O-F(LMOF)正极的层状阴离子骨架中成功实现了重氟化(9.5%)。用F取代O稳定了层状阴离子骨架,完全抑制了首次循环中的析氧反应,并大大提高了氧氧化还原的可逆性,提供了389 mA h g的超高可逆容量,这是LiMnO理论容量的85%。此外,它还诱导在颗粒表面连贯地形成一层薄的尖晶石壳,大大提高了表面结构稳定性,使LMOF表现出优异的循环稳定性(在50 mA g下120次循环后容量保持率为91.8%)和出色的倍率性能。这些发现强调了稳定阴离子骨架在开发下一代高性能低成本锂离子电池正极中的重要性。

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