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High power lithium ion battery materials by computational design

机译:大功率锂离子电池材料的计算设计

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Empirical bond length-bond valence (BV) relations provide insight into the link between structure of and ion transport in solid electrolytes and mixed conductors. Building on our earlier systematic adjustment of BV parameters to the bond softness, here we discuss how the squared BV mismatch is linked to the absolute energy scale and used as a general Morse-type interaction potential for analyzing low-energy ion migration paths in ion conducting solids or mixed conductors by either an energy landscape approach or molecular dynamics (MD) simulations. For a wide range of lithium oxides we could thusrnmodel ion transport revealing significant differences to an earlier geometric approach. This novel BV-based force-field has then been applied to investigate a range of mixed conductors, focusing on cathode materials for lithium ion battery (LIB) applications to promote a systematic design of LIB cathodes that combine high energy density with high power density. To demonstrate the versatility of the new BV-based force field it is applied in exploring various strategies to enhance the power performance of safe low cost LIB materials including LiFePO_4, LiVPO_4F, LiFeSO_4F, etc.
机译:经验键长键合价(BV)关系提供了对固体电解质和混合导体中离子迁移与结构之间联系的了解。在我们较早的BV参数对键软度的系统调整的基础上,我们讨论平方的BV不匹配如何与绝对能级联系起来,并用作一般的摩尔斯型相互作用势,以分析离子传导中的低能离子迁移路径固体或混合导体通过能量景观方法或分子动力学(MD)模拟。因此,对于各种各样的氧化锂,我们可以对离子迁移进行建模,从而揭示与早期几何方法的显着差异。然后,这种基于BV的新颖力场已被用于研究各种混合导体,重点是锂离子电池(LIB)应用的阴极材料,以促进将高能量密度与高功率密度相结合的LIB阴极的系统设计。为了证明新的基于BV的力场的多功能性,将其应用于探索各种策略来增强安全的低成本LIB材料(包括LiFePO_4,LiVPO_4F,LiFeSO_4F等)的功率性能。

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