Energy Storage Science and Technology ›› 2022, Vol. 11 ›› Issue (9): 2900-2920.doi: 10.19799/j.cnki.2095-4239.2021.0595

• Special Issue for the 10th Anniversary • Previous Articles     Next Articles

High-nickel ternary layered cathode materials for lithium-ion batteriesResearch progresschallenges and improvement strategies

Zhizhan LI(), Jinlei QIN, Jianing LIANG, Zhengrong LI, Rui WANG, Deli WANG   

  1. Key Laboratory of Material Chemistry for Energy Conversion and Storage, Huazhong University of Science and Technology, Wuhan 430074, Hubei, China
  • Received:2021-11-11 Revised:2021-12-27 Online:2022-09-05 Published:2022-08-30
  • Contact: Deli WANG E-mail:944264721@qq.com

Abstract:

With the gradual expansion of lithium-ion battery applications in the field of new energy vehicles, endurance mileage has become a key factor restricting the development of new energy vehicles. Improving the energy density of lithium-ion batteries is an effective way to solve range anxiety. Owing to their high specific capacity, low cost, and relatively good safety, high-nickel ternary layered materials are now one of the most promising cathode candidates for the next high-specific energy lithium-ion batteries. However, increased nickel content significantly decreases ternary layered materials' cycling and thermal stability. In this regard, we first summarize the development process of cathode materials for lithium ion batteries and analyze the necessity of developing ternary layered materials for high nickel, after which the current challenges based on the research status of high nickel ternary layered cathode materials are systematically discussed. The failure mechanism of the material is comprehensively analyzed by considering cation mixing, structural degradation, microcracks, surface side reactions, and thermal stability. In addition, considering the problems of high nickel ternary layered materials, some effective and advanced improvement strategies, including surface coating, element doping, single-crystal structure, and concentration gradient design, are reviewed. The research progress of various improvement strategies and modification mechanisms is highlighted. Finally, we compare the characteristics of various improvement strategies. Based on the advantages of a single improvement strategy and the coupling effect of different improvement strategies, we look forward to the development direction of the improvement strategy for high nickel ternary layered materials and propose feasibility programs for the collaborative application of multiple improvement strategies.

Key words: lithium-ion battery, cathode material, layered structure, high-nickel ternary, modification strategy

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