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局部和电子结构变化对部分阴离子取代锂锰尖晶石氧化物电化学性能的影响:X 射线吸收光谱研究。

Role of local and electronic structural changes with partially anion substitution lithium manganese spinel oxides on their electrochemical properties: X-ray absorption spectroscopy study.

机构信息

Department of Interdisciplinary Environment, Graduate School of Human and Environmental Studies, Kyoto University, Yoshida-nihonmatsu-cho, Sakyo-ku, Japan.

出版信息

Dalton Trans. 2011 Oct 14;40(38):9752-64. doi: 10.1039/c1dt10612k. Epub 2011 Aug 24.

Abstract

The electronic and local structures of partially anion-substituted lithium manganese spinel oxides as positive electrodes for lithium-ion batteries were investigated using X-ray absorption spectroscopy (XAS). LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η) (η = 0, 0.018, 0.036, 0.055, 0.073, 0.110, 0.180) were synthesized by the reaction between LiMn(1.8)Li(0.1)Ni(0.1)O(4) and NH(4)HF(2). The shift of the absorption edge energy in the XANES spectra represented the valence change of Mn ion with the substitution of the low valent cation as Li(+), Ni(2+), or F(-) anion. The local structural change at each compound with the amount of a Jahn-Teller Mn(3+) ion could be observed by EXAFS spectra. The discharge capacity of the tested electrode was in the order of LiMn(2)O(4) > LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η) (η = 0.036) > LiMn(1.8)Li(0.1)Ni(0.1)O(4) while the cycleability was in the order of LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η) (η = 0.036) ≈ LiMn(1.8)Li(0.1)Ni(0.1)O(4) > LiMn(2)O(4). It was clarified that LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η) has a good cycleability because of the anion doping effect and simultaneously shows acceptable rechargeable capacity because of the large amount of the Jahn-Teller Mn(3+) ions in the pristine material.

摘要

采用 X 射线吸收光谱(XAS)研究了作为锂离子电池正极的部分阴离子取代的锂锰尖晶石氧化物的电子和局部结构。通过 LiMn(1.8)Li(0.1)Ni(0.1)O(4)与 NH(4)HF(2)之间的反应合成了 LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η)(η=0,0.018,0.036,0.055,0.073,0.110,0.180)。XANES 光谱中吸收边缘能量的偏移代表 Mn 离子价态随低价阳离子(Li+、Ni2+或 F-阴离子)取代的变化。通过 EXAFS 光谱可以观察到每个化合物随 Jahn-Teller Mn(3+)离子数量的局部结构变化。测试电极的放电容量按 LiMn(2)O(4)>LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η)(η=0.036)>LiMn(1.8)Li(0.1)Ni(0.1)O(4)的顺序排列,而循环性能则按 LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η)(η=0.036)≈LiMn(1.8)Li(0.1)Ni(0.1)O(4)≧LiMn(2)O(4)的顺序排列。结果表明,LiMn(1.8)Li(0.1)Ni(0.1)O(4-η)F(η)具有良好的循环性能,这是由于阴离子掺杂效应,同时由于原始材料中 Jahn-Teller Mn(3+)离子的大量存在,表现出可接受的可再充电容量。

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