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充分利用锆离子改善锂离子电池富镍正极材料的结构和表面性能

Sufficient Utilization of Zirconium Ions to Improve the Structure and Surface properties of Nickel-Rich Cathode Materials for Lithium-Ion Batteries.

作者信息

He Tao, Lu Yun, Su Yuefeng, Bao Liying, Tan Jing, Chen Lai, Zhang Qiyu, Li Weikang, Chen Shi, Wu Feng

机构信息

School of Materials Science and Engineering, Beijing Key Laboratory of Environmental Science and Engineering, Beijing Institute of Technology, Beijing, 100081, PR China.

Collaborative Innovation Center for Electric Vehicles in Beijing, Beijing Institute of Technology, Beijing, 100081, PR China.

出版信息

ChemSusChem. 2018 May 25;11(10):1639-1648. doi: 10.1002/cssc.201702451. Epub 2018 Apr 14.

DOI:10.1002/cssc.201702451
PMID:29460416
Abstract

We doped Zr ions in the outer layer of Ni Co Mn (OH) by coprecipitation. The distribution of Zr in the final cathode materials showed a gradient distribution because of ion migration during the thermal treatment. The doped layer was confirmed by using various analysis methods (energy-dispersive X-ray spectroscopy, XRD, X-ray photoelectron spectroscopy, and TEM), which implies that Zr can not only occupy both the transition metal slabs and Li slabs but also form a Li ZrO layer on the surface as a highly ion-conductive layer. The doped Zr in the transition metal slabs can stabilize the crystal structure because of the strong Zr-O bond energy, and the doped Zr in the Li slabs can act as pillar ions to improve the structural stability and reduce cation mixing. The gradient doping can take advantage of the "pillar effect" and restrain the "blocking effect" of the pillar ions, which reduces irreversible capacity loss and improves the cycling and rate performance of the Ni-rich cathode materials. The capacity retention of the modified sample reached 83.2 % after 200 cycles at 1C (200 mA g ) at 2.8-4.5 V, and the discharge capacity was up to 164.7 mAh g at 10C. This effective strategy can improve the structure stability of the cathode material while reducing the amount of non-electrochemical active dopant because of the gradient distribution of the dopant. In addition, the highly ion-conductive layer of Li ZrO on the surface can improve the rate performance of the cathode.

摘要

我们通过共沉淀法在Ni Co Mn(OH)的外层掺杂Zr离子。由于热处理过程中的离子迁移,Zr在最终阴极材料中的分布呈现梯度分布。通过使用各种分析方法(能量色散X射线光谱、XRD、X射线光电子能谱和TEM)证实了掺杂层的存在,这意味着Zr不仅可以占据过渡金属层和锂层,还能在表面形成Li ZrO层作为高离子导电层。过渡金属层中掺杂的Zr由于Zr - O键能强可以稳定晶体结构,锂层中掺杂的Zr可以作为支柱离子来提高结构稳定性并减少阳离子混合。梯度掺杂可以利用“支柱效应”并抑制支柱离子的“阻塞效应”,从而减少不可逆容量损失并提高富镍阴极材料的循环和倍率性能。改性样品在2.8 - 4.5 V、1C(200 mA g)下循环200次后的容量保持率达到83.2%,在10C下的放电容量高达164.7 mAh g。由于掺杂剂的梯度分布,这种有效策略可以在减少非电化学活性掺杂剂用量的同时提高阴极材料的结构稳定性。此外,表面的Li ZrO高离子导电层可以提高阴极的倍率性能。

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