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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Redesign of Li2MP2O7 (M = Fe or Mn) by Tuning the Li Diffusion in Rechargeable Battery Electrodes
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Redesign of Li2MP2O7 (M = Fe or Mn) by Tuning the Li Diffusion in Rechargeable Battery Electrodes

机译:通过调整可充电电池电极中的锂扩散来重新设计Li2MP2O7(M = Fe或Mn)

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摘要

Defects in crystals such as antisites generally lead-to the deterioration of the ionic conductivity of solid-state ionic conductors. Herein, using first principles calculations, we demonstrate that the Li diffusion in Li2MP2O7 (M = Fe or Mn), a promising battery material, is sensitively affected by the presence of Li/M antisites; however, unexpectedly, the antisites significantly promote Li diffusion. The calculations reveal that the presence of antisites reduces the barrier of Li hopping and opens new paths for Li diffusion in the Li2MP2O7 crystal. In our experimental verification, we succeeded in synthesizing crystalline Li2MnP2O7 with varying Li/Mn antisite contents and demonstrated that the inclusion of antisites results in improved power capability with faster Li diffusion for Li-ion battery electrodes. We believe that this unexpected finding of increasing the ionic conductivity by introducing antisite defects broadens our understanding of solid-state ionic conductors and provides a new strategy for improving Li diffusion in conventional electrode materials for Li rechargeable batteries.
机译:诸如反位点之类的晶体缺陷通常会导致固态离子导体的离子电导率下降。本文中,使用第一性原理计算,我们证明了Li2MP2O7(M = Fe或Mn)(一种有前途的电池材料)中的Li扩散受到Li / M反位点的存在的敏感影响。然而,出乎意料的是,抗位点显着促进了Li的扩散。计算表明,反位点的存在降低了Li跃迁的势垒,并为Li2MP2O7晶体中Li的扩散开辟了新的途径。在我们的实验验证中,我们成功地合成了具有不同Li / Mn反位含量的晶体Li2MnP2O7,并证明了包含反位点可提高功率性能,并加快锂离子电池电极的锂扩散。我们相信,通过引入反位缺陷来增加离子电导率的这一出乎意料的发现,拓宽了我们对固态离子导体的理解,并为改善锂可充电电池的传统电极材料中的锂扩散提供了新的策略。

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