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Nanosize storage properties in spinel Li_ 4Ti_ 5O_ (12) explained by anisotropic surface lithium insertion

机译:各向异性表面锂插入解释了尖晶石Li_4Ti_5O_(12)中的纳米储能特性

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摘要

Nanosizing is a frequently applied strategy in recent years to improve storage properties of Li-ion electrodes and facilitate novel storage mechanisms. Due to particle size reduction, surface effects increasingly dominate, which can drastically change the storage properties. Using density functional theory calculations we investigate the impact of the surface environment on the Li-ion insertion properties in defective spinel Li_ (4+x)Ti_ 5O_ (12), a highly promising negative electrode material. The calculations reveal that the storage properties strongly depend on the surface orientation. The lowest energy (1 1 0) surface is predicted to be energetically favorable for Li-ion insertion into the vacant 16c sites. The (1 1 1) surface allows capacities that significantly exceed the bulk capacity Li_ 7Ti_ 5O_ (12) at voltages greater than 0 V by occupation of 8a sites in addition to the fully occupied 16c sites. One of the key findings is that the surface environment extends nanometers into the storage material, leading to a distribution of voltages responsible for the curved voltage profile commonly observed in nanosized insertion electrode materials. Both the calculated surface-specific voltage profiles and the calculated particle size dependent voltage profiles are in good agreement with the experimental voltage profiles reported in literature. These results give a unique insight into the impact of nanostructuring and further possibilities of tailoring the Li-ion voltage profiles and capacities in lithium insertion materials.
机译:纳米化是近年来改善锂离子电极的存储性能并促进新型存储机制的一种常用策略。由于粒度减小,表面效果越来越占主导地位,这可能会大大改变存储性能。使用密度泛函理论计算,我们研究了表面环境对缺陷尖晶石Li_(4 + x)Ti_ 5O_(12)(一种极有希望的负极材料)中Li离子插入特性的影响。计算表明,存储性能在很大程度上取决于表面取向。最低能量(1 1 0)的表面预计在能量上有利于将锂离子插入空的16c位置。 (1 1 1)表面允许在大于0 V的电压下通过占用8a位置(除了完全占据的16c位置之外)而显着超过容量Li_7Ti_5O_(12)。关键发现之一是表面环境将纳米延伸到存储材料中,导致负责分布在纳米尺寸插入电极材料中的弯曲电压曲线的电压分布。计算出的表面比电压曲线和计算出的与粒度有关的电压曲线都与文献中报道的实验电压曲线非常吻合。这些结果为纳米结构的影响提供了独特的见解,还为定制锂离子插入材料中的锂离子电压曲线和容量提供了更多可能性。

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