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通过钙掺杂降低锂/镍无序度并改善富镍LiNiCoMnO的电化学性能

Decreasing Li/Ni Disorder and Improving the Electrochemical Performances of Ni-Rich LiNiCoMnO by Ca Doping.

作者信息

Chen Minmin, Zhao Enyue, Chen Dongfeng, Wu Meimei, Han Songbai, Huang Qingzhen, Yang Limei, Xiao Xiaoling, Hu Zhongbo

机构信息

College of Materials Science and Optoelectronic Technology, University of Chinese Academy of Sciences , Beijing 100049, P. R. China.

Department of Nuclear Physics, China Institute of Atomic Energy , Beijing 102413, China.

出版信息

Inorg Chem. 2017 Jul 17;56(14):8355-8362. doi: 10.1021/acs.inorgchem.7b01035. Epub 2017 Jun 26.

Abstract

Decreasing Li/Ni disorder has been a challenging problem for layered oxide materials, where disorder seriously restricts their electrochemical performances for lithium-ion batteries (LIBs). Element doping is a great strategy that has been widely used to stabilize the structure of the cathode material of an LIB and improve its electrochemical performance. On the basis of the results of previous studies, we hypothesized that the element of Ca, which has a lower valence state and larger radius compared to Ni, would be an ideal doping element to decrease the Li/Ni disorder of LiMO materials and enhance their electrochemical performances. A Ni-rich LiNiMnCoO cathode material was selected as the bare material, which usually shows severe Li/Ni disorder and serious capacity attenuation at a high cutoff voltage. So, a series of Ca-doped LiNiCoMnCaO (x = 0-8%) samples were synthesized by a traditional solid-state method. As hypothesized, neutron diffraction showed that Ca-doped LiNiCoMnO possessed a lower degree of Li/Ni disorder, and potentiostatic intermittent titration results showed a faster diffusion coefficient of Li compared with that of LiNiMnCoO. The Ca-doped LiNiMnCoO samples exhibited higher discharge capacities and better cycle stabilities and rate capabilities, especially under a high cutoff voltage with 4.5 V. In addition, the problems of polarization and voltage reduction of LiNiMnCoO were also alleviated by doping with Ca. More importantly, we infer that it is crucial to choose an appropriate doping element and our findings will help in the research of other layered oxide materials.

摘要

对于层状氧化物材料而言,降低锂镍混排一直是个颇具挑战性的问题,因为这种混排严重限制了它们在锂离子电池(LIBs)中的电化学性能。元素掺杂是一种广泛应用的有效策略,可用于稳定LIB正极材料的结构并改善其电化学性能。基于先前的研究结果,我们推测,与镍相比,价态更低且半径更大的钙元素,将是一种理想的掺杂元素,可降低LiMO材料的锂镍混排并提高其电化学性能。我们选择了富镍的LiNiMnCoO正极材料作为基础材料,这种材料在高截止电压下通常会出现严重的锂镍混排和容量严重衰减的情况。因此,我们采用传统的固态法合成了一系列钙掺杂的LiNiCoMnCaO(x = 0 - 8%)样品。正如我们所推测的,中子衍射表明,钙掺杂的LiNiCoMnO的锂镍混排程度较低,恒电位间歇滴定结果表明,与LiNiMnCoO相比,Li的扩散系数更快。钙掺杂的LiNiMnCoO样品表现出更高的放电容量、更好的循环稳定性和倍率性能,尤其是在4.5V的高截止电压下。此外,通过钙掺杂,LiNiMnCoO的极化和电压降低问题也得到了缓解。更重要的是,我们推断选择合适的掺杂元素至关重要,我们的研究结果将有助于其他层状氧化物材料的研究。

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