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增强用于高压和高倍率锂离子电池的尖晶石LiNiMnO正极中的轨道相互作用

Enhancing Orbital Interaction in Spinel LiNiMnO Cathode for High-Voltage and High-Rate Li-Ion Batteries.

作者信息

Fu Tianji, Li Yujie, Yao Ziqing, Guo Tongsen, Liu Shuangke, Chen Zhongxue, Zheng Chunman, Sun Weiwei

机构信息

College of Aerospace Science and Engineering, National University of Defense Technology, Changsha, 410073, China.

Engineering Research Center of Nano-Geomaterials of Ministry of Education, China University of Geosciences, Wuhan, 430074, China.

出版信息

Small. 2024 Oct;20(40):e2402339. doi: 10.1002/smll.202402339. Epub 2024 May 28.

Abstract

High voltage cobalt-free spinel LiNiMnO (LNMO) is well organized as a high-power cathode material for lithium (Li)-ion batteries, however, the weak interaction between the 3d orbital of the transition metal (TM) ions and the 2p orbital of oxygen (O) leads to the instability of crystal structural, hindering the long-term stable cycling of LNMO cathode especially at high temperatures. Here, a design strategy of orbital interaction is initiated to strengthen TM 3d-O 2p framework in P-doped LNMO (P-LNMO) by choosing phytic acid as P dopant, which can realize more uniform doping compared to regular phosphate. The results show that the enhancement of TM 3d-O 2p orbital interaction in P-LNMO can suppress the Jahn-Teller effect and subsequent dissolution of Mn, as well as lowers the energy barrier for Li ion insertion/extraction kinetics. As a result, superior electrochemical performances including high discharge capacity, stable cycling behavior and enhanced rate capability of P-LNMO are obtained. Significantly, the P-LNMO pouch cell shows great cycling stability with 97.4% capacity retention after 100 cycles.

摘要

高压无钴尖晶石LiNiMnO(LNMO)作为锂离子电池的高功率正极材料具有良好的结构,然而,过渡金属(TM)离子的3d轨道与氧(O)的2p轨道之间的弱相互作用导致晶体结构不稳定,阻碍了LNMO正极的长期稳定循环,尤其是在高温下。在此,通过选择植酸作为P掺杂剂,启动了一种轨道相互作用的设计策略,以加强P掺杂的LNMO(P-LNMO)中的TM 3d-O 2p框架,与常规磷酸盐相比,植酸可以实现更均匀的掺杂。结果表明,P-LNMO中TM 3d-O 2p轨道相互作用的增强可以抑制Jahn-Teller效应和随后的Mn溶解,同时降低锂离子嵌入/脱出动力学的能垒。因此,P-LNMO获得了优异的电化学性能,包括高放电容量、稳定的循环行为和增强的倍率性能。值得注意的是,P-LNMO软包电池在100次循环后表现出出色的循环稳定性,容量保持率为97.4%。

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