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Nanoscale Zirconium-Abundant Surface Layers on Lithium- and Manganese-Rich Layered Oxides for High-Rate Lithium-Ion Batteries

机译:用于高速锂离子电池的锂 - 和锰的层状氧化物上的纳米级锆 - 富锆表面层

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摘要

Battery performance, such as the rate capability and cycle stability Of lithium transition metal oxides, is strongly correlated with the surface properties of active particles. For lithium-rich layered oxides, transition metal segregation in the initial state and migration upon cycling leads to a significant structural rearrangement, which eventually degrades the electrode performance. Here, we show that a fine-tuning of surface chemistry on the particular crystal facet can facilitate ionic diffusion and thus improve the rate capability dramatically, delivering a specific capacity of similar to 110 mAh g(-1) at 30C. This high rate performance is realized by creating a nanoscale zirconium-abundant rock-salt-like surface phase epitaxially grown on the layered bulk. This surface layer is spontaneously formed on the Li+ diffusive crystallographic facets during the synthesis and is also durable upon electrochemical cycling. As a result, Li-ions can move rapidly through this nanoscale surface layer over hundreds of cycles. This study provides a promising new strategy for designing and preparing a high-performance lithium-rich layered oxide cathode material.
机译:电池性能,例如锂过渡金属氧化物的速率能力和循环稳定性,与活性颗粒的表面性质密切相关。对于富锂的层状氧化物,在循环的初始状态下的过渡金属偏析和循环在循环后导致显着的结构重排,这最终降低了电极性能。在这里,我们表明,特定晶面上的表面化学的微调可以促进离子扩散,从而显着提高速率能力,在30℃下递送类似于110mAhg(-1)的特定容量。通过在层状体积上形成纳米级锆丰 - 丰富的岩盐状表面阶段来实现这种高速率性能。在合成期间在Li +漫射晶面上自发地形成该表面层,并且在电化学循环时也耐用。结果,Li-离子可以通过该纳米级表面层快速移动超过数百周期。本研究提供了一种有希望的设计和制备高性能锂富含锂层状氧化物阴极材料的新策略。

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