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用于锂硫电池的高性能不对称分离器。

Performance-Enhancing Asymmetric Separator for Lithium-Sulfur Batteries.

机构信息

Electrochemistry Laboratory and ‡Laboratory of Biomolecular Research, Paul Scherrer Institute , CH-5232 Villigen, Switzerland.

出版信息

ACS Appl Mater Interfaces. 2016 Jul 27;8(29):18822-31. doi: 10.1021/acsami.6b04662. Epub 2016 Jul 15.

Abstract

Asymmetric separators with polysulfide barrier properties consisting of porous polypropylene grafted with styrenesulfonate (PP-g-PLiSS) were characterized in lithium-sulfur cells to assess their practical applicability. Galvanostatic cycling at different C-rates with and without an electrolyte additive and cyclic voltammetry were used to probe the electrochemical performance of the cells with the PP-g-PLiSS separators and to compare it with the performance of the cells utilizing state-of-the-art separator, Celgard 2400. Overall, it was found that regardless of the applied cycling rate, the use of the grafted separators greatly enhances the Coulombic efficiency of the cell. An appropriate Li-exchange-site (-SO3(-)) concentration at and near the surface of the separator was found to be essential to effectively suppress the polysulfide shuttle without sacrificing the Li-ion mobility through the separator and to improve the practical specific charge of the cell.

摘要

具有聚砜阻隔性能的不对称隔板由接枝苯乙烯磺酸盐的多孔聚丙烯(PP-g-PLiSS)组成,在锂硫电池中进行了表征,以评估其实际适用性。在有无电解质添加剂的情况下,采用恒电流循环和循环伏安法来探测具有 PP-g-PLiSS 隔板的电池的电化学性能,并将其与利用最先进隔板 Celgard 2400 的电池的性能进行比较。总的来说,研究发现,无论应用的循环速率如何,使用接枝隔板都能极大地提高电池的库仑效率。在隔板的表面及其附近存在适当的锂离子交换位(-SO3(-))浓度对于有效抑制多硫化物穿梭效应而不牺牲锂离子通过隔板的迁移率以及提高电池的实际比容量是至关重要的。

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