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Fully Exploited Oxygen Redox Reaction by the Inter‐Diffused Cations in Co‐Free Li‐Rich Materials for High Performance Li‐Ion Batteries

机译:通过用于高性能锂离子电池的共用锂富含材料中的帧间扩散阳离子充分利用氧氧化还原反应

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摘要

To meet the growing demand for global electrical energy storage, high‐energy‐density electrode materials are required for Li‐ion batteries. To overcome the limit of the theoretical energy density in conventional electrode materials based solely on the transition metal redox reaction, the oxygen redox reaction in electrode materials has become an essential component because it can further increase the energy density by providing additional available electrons. However, the increase in the contribution of the oxygen redox reaction in a material is still limited due to the lack of understanding its controlled parameters. Here, it is first proposed that Li‐transition metals (TMs) inter‐diffusion between the phases in Li‐rich materials can be a key parameter for controlling the oxygen redox reaction in Li‐rich materials. The resulting Li‐rich materials can achieve fully exploited oxygen redox reaction and thereby can deliver the highest reversible capacity leading to the highest energy density, ≈1100 Wh kg−1 among Co‐free Li‐rich materials. The strategy of controlling Li/transition metals (TMs) inter‐diffusion between the phases in Li‐rich materials will provide feasible way for further achieving high‐energy‐density electrode materials via enhancing the oxygen redox reaction for high‐performance Li‐ion batteries.
机译:为了满足对全球电能存储不断增长的需求,锂离子电池需要高能密度电极材料。为了克服常规电极材料中的理论能量密度的限制仅基于过渡金属氧化还原反应,电极材料中的氧氧化还原反应已成为必需的组分,因为它可以通过提供额外的可用电子进一步提高能量密度。然而,由于缺乏了解其受控参数,氧氧化还原反应在材料中的贡献的增加仍然有限。这里,首先提出锂富含材料相之间的锂过渡金属(TMS)间扩散可以是用于控制富富氧化物中氧氧化还原反应的关键参数。由此产生的富含材料可以实现完全利用的氧氧化还原反应,从而可以提供最高的可逆能力,导致最高能量密度,≈1100WH-1在无共同的锂材料中。控制Li /过渡金属(TMS)之间的策略在富锂材料相之间的相互扩散将提供可行的方式,以通过增强高性能锂离子电池的氧氧化还原反应进一步实现高能密度电极材料。

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