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Stabilizing nickel-rich layered oxide cathodes by magnesium doping for rechargeable lithium-ion batteries

机译:通过镁掺杂稳定可充电锂离子电池的富镍分层氧化物阴极

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摘要

Nickel-rich layered transition metal oxides are attractive cathode materials for rechargeable lithium-ion batteries but suffer from inherent structural and thermal instabilities that limit the deliverable capacity and cycling performance on charging to a cutoff voltage above 4.3 V. Here we report LiNi0.90Co0.07Mg0.03O2 as a stable cathode material. The obtained LiNi0.90Co0.07Mg0.03O2 microspheres exhibit high capacity (228.3 mA h g–1 at 0.1C) and remarkable cyclability (84.3% capacity retention after 300 cycles). Combined X-ray diffraction and Cs-corrected microscopy reveal that Mg doping stabilizes the layered structure by suppressing Li/Ni cation mixing and Ni migration to interlayer Li slabs. Because of the pillar effect of Mg in Li sites, LiNi0.90Co0.07Mg0.03O2 shows decent thermal stability and small lattice variation until it is charged to 4.7 V, undergoing a H1–H2 phase transition without discernible formation of an unstable H3 phase. The results indicate that moderate Mg doping is a facile yet effective strategy to develop high-performance Ni-rich cathode materials.
机译:富镍层状过渡金属氧化物是可再充电锂离子电池的有吸引力的阴极材料,但因其固有的结构和热不稳定性而受到局限,这些不稳定性限制了充电至4.3 V以上的截止电压时的可传递容量和循环性能。在此,我们报告LiNi0.90Co0。 07Mg0.03O2作为稳定的阴极材料。所获得的LiNi0.90Co0.07Mg0.03O2微球表现出高容量(在0.1C时为228.3 mA h g –1 )和出色的可循环性(300个循环后的容量保持率为84.3%)。 X射线衍射和Cs校正显微镜的结合显示,Mg掺杂通过抑制Li / Ni阳离子混合和Ni迁移到层间Li平板而稳定了层状结构。由于锂在锂位点的柱效应,LiNi0.90Co0.07Mg0.03O2表现出良好的热稳定性和小的晶格变化,直到充电至4.7 V,经历了H1-H2相变,而没有明显形成不稳定的H3相。结果表明,适度的Mg掺杂是开发高性能富Ni阴极材料的便捷而有效的策略。

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