Synergistically dissipating the local strain and restraining lattice oxygen escape by fine-tuning of microstructure enabling Ni-rich cathodes with superior cyclabilities

IF 13.1 1区 化学 Q1 Energy
Fengxia Fan, Ruixin Zheng, Chenrui Zeng, Haoyang Xu, Xinxiang Wang, Guilei Tian, Shuhan Wang, Chuan Wang, Pengfei Liu, Chaozhu Shu
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引用次数: 0

Abstract

LiNixCoyMnzO2 (NCM, x ≥ 0.8, x  + y + z = 1) cathodes have attracted much attention due to their high specific capacity and low cost. However, severe anisotropic volume changes and oxygen evolution induced capacity decay and insecurity have hindered their commercial application at scale. In order to overcome these challenges, a kind of tantalum (Ta) doped nickel-rich cathode with reduced size and significantly increased number of primary particles is prepared by combining mechanical fusion with high temperature co-calcination. The elaborately designed micro-morphology of small and uniform primary particles effectively eliminates the local strain accumulation caused by the random orientation of primary particles. Moreover, the uniform distribution of small primary particles stabilizes the spherical secondary particles, thus effectively inhibiting the formation and extension of microcracks. In addition, the formed strong Ta–O bonds restrain the release of lattice oxygen, which greatly increases the structural stability and safety of NCM materials. Therefore, the cathode material with the designed primary particle morphology shows superior electrochemical performance. The 1 mol% Ta-modified cathode (defined as 1% Ta-NCM) shows a capacity retention of 97.5% after 200 cycles at 1 C and a rate performance of 137.3 mAh g−1 at 5 C. This work presents promising approach to improve the structural stability and safety of nickel-rich NCM.

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来源期刊
Journal of Energy Chemistry
Journal of Energy Chemistry CHEMISTRY, APPLIED-CHEMISTRY, PHYSICAL
CiteScore
19.10
自引率
8.40%
发文量
3631
审稿时长
15 days
期刊介绍: The Journal of Energy Chemistry, the official publication of Science Press and the Dalian Institute of Chemical Physics, Chinese Academy of Sciences, serves as a platform for reporting creative research and innovative applications in energy chemistry. It mainly reports on creative researches and innovative applications of chemical conversions of fossil energy, carbon dioxide, electrochemical energy and hydrogen energy, as well as the conversions of biomass and solar energy related with chemical issues to promote academic exchanges in the field of energy chemistry and to accelerate the exploration, research and development of energy science and technologies. This journal focuses on original research papers covering various topics within energy chemistry worldwide, including: Optimized utilization of fossil energy Hydrogen energy Conversion and storage of electrochemical energy Capture, storage, and chemical conversion of carbon dioxide Materials and nanotechnologies for energy conversion and storage Chemistry in biomass conversion Chemistry in the utilization of solar energy
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