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Designing principle for Ni-rich cathode materials with high energy density for practical applications

机译:实用应用具有高能量密度的Ni富含阴极材料的原理

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摘要

Nickel(Ni)-rich lithium transition metal oxides (e.g. LiNi0.8Co0.15Al0.05O2 (NCA), LiNi1-x-yMnxCoyO2 (x + y 1) (NMC)) with layered structure are regarded as promising cathode candidates for constructing high energy density lithium ion batteries, so as to promote the market penetration of zero-emission electric vehicles. However, the poor structural and interfacial stability of Ni-rich NMC or NCA still hamper their large-scale applications. This review article mainly summarizes the recent progress achieved in the development of Ni-rich cathode materials, with an aim to provide important clues for future design Ni-rich cathodes and eventually enable their practical applications. Firstly, we introduce the improved method for the synthesis of Ni-rich cathode materials and discuss the relationships between the synthesis method, physicochemical properties, and the electrochemical performances of the cathode materials. Secondly, the insightful understandings on the capacity and voltage fading mechanism as well as the reasons of poor structure stability are comprehensively overviewed. Then, we summarize the main progress regarding to the novel approaches and attempts to prolong the cycling lifetime of Ni-rich materials and safety. Finally, we end up this review by proposing new perspectives and insights to stimulate more revolutionary strategies to boost the practical applications of Ni-rich cathodes.
机译:镍(Ni) - 中等锂过渡金属氧化物(例如LINI0.8CO0.15A10.05O2(NCA),具有层状结构的LINI1-X-YMNXCOY2(X + Y 1))被认为是有前途的阴极候选构建高能密度锂离子电池,以促进零排放电动车的市场渗透。然而,Ni-Rich NMC或NCA的结构和界面稳定性差仍然阻碍了其大规模应用。该审查文章主要总结了最近实现了富国正极材料的发展进展,旨在为未来设计NI的阴极提供重要的线索,最终能够实现其实际应用。首先,我们介绍了合成Ni的阴极材料的改进方法,并讨论了合成方法,物理化学性质与阴极材料的电化学性能之间的关系。其次,全面概述了对容量和电压衰落机制的洞察力和电压衰落机制以及结构稳定性差的原因。然后,我们总结了关于新型方法的主要进展,并试图延长富力的材料和安全的循环寿命。最后,我们通过提出新的观点和见解来刺激更加革命性的战略来促进富含NI的阴极的实际应用。

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