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界面纳米 BaTiO 处理改善 LiCoO 正极薄膜电池的超高倍率充电性能。

Enhancement of Ultrahigh Rate Chargeability by Interfacial Nanodot BaTiO Treatment on LiCoO Cathode Thin Film Batteries.

机构信息

Laboratory for Materials and Structures , Tokyo Institute of Technology , Yokohama 226-8503 , Japan.

Graduate School of Natural Science and Technology , Okayama University , Okayama 700-8530 , Japan.

出版信息

Nano Lett. 2019 Mar 13;19(3):1688-1694. doi: 10.1021/acs.nanolett.8b04690. Epub 2019 Feb 18.

Abstract

Nanodot BaTiO supported LiCoO cathode thin films can dramatically improve high-rate chargeability and cyclability. The prepared BaTiO nanodot is <3 nm in height and 35 nm in diameter, and its coverage is <5%. Supported by high dielectric constant materials on the surface of cathode materials, Li ion (Li) can intercalate through robust Li paths around the triple-phase interface consisting of the dielectric, cathode, and electrolyte. The current concentration around the triple-phase interface is observed by the finite element method and is in good agreement with the experimental data. The interfacial resistance between the cathode and electrolyte with nanodot BaTiO is smaller than that without nanodot BaTiO. The decomposition of the organic solvent electrolyte can prevent the fabrication of a solid electrolyte interface around the triple-phase interface. Li paths may be created at non solid electrolyte interface covered regions by the strong current concentration originating from high dielectric constant materials on the cathode. Robust Li paths lead to excellent chargeability and cyclability.

摘要

纳米 BaTiO 负载 LiCoO 正极薄膜可以显著提高高倍率充电能力和循环性能。制备的 BaTiO 纳米点高度 <3nm,直径 35nm,覆盖率 <5%。通过在正极材料表面的高介电常数材料的支撑下,锂离子(Li)可以通过由电介质、正极和电解质组成的三相界面周围的坚固 Li 路径嵌入。通过有限元法观察到三相界面周围的电流集中,并与实验数据吻合良好。具有纳米 BaTiO 的正极和电解质之间的界面电阻小于没有纳米 BaTiO 的正极和电解质之间的界面电阻。在三相界面周围,有机电解质的分解可以防止固体电解质界面的形成。通过来自正极上的高介电常数材料的强电流集中,可以在非固体电解质界面覆盖区域创建 Li 路径。坚固的 Li 路径导致优异的充电能力和循环性能。

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