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一种极性有序通道复合隔膜助力无枝晶长循环锂金属电池。

A Polar and Ordered-Channel Composite Separator Enables Antidendrite and Long-Cycle Lithium Metal Batteries.

作者信息

Wu Zhen, Cai Zhipeng, Fang Bin, Liu Meinan, Wu Huaping, Liu Aiping, Ye Fangmin

机构信息

Center for Optolectronics Materials and Devices, Key Laboratory of Optical Field Manipulation of Zhejiang Province, Zhejiang Sci-Tech University, Hangzhou 310018, China.

i-Lab, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou 215123, China.

出版信息

ACS Appl Mater Interfaces. 2021 Jun 9;13(22):25890-25897. doi: 10.1021/acsami.1c02951. Epub 2021 May 27.

Abstract

Lithium (Li) metal as an anode replacing the traditional graphite could largely enhance the specific energy density of Li batteries. However, the repeated formation of solid electrolyte interfaces on the surface of Li metal upon plating/stripping leads to a low Coulombic efficiency, and the growth of Li dendrites upon cycling probably causes the short circuit or even explosion of the batteries, both of which block the commercial application of Li metal in lithium metal batteries (LMBs). Herein, we report an antidendrite AAO@PVDF-HFP composite separator fabricated by a two-step method, which features the ordered pore channels and the polar groups in the channels. This novel composite separator has a good wettability to the electrolyte, high mechanical properties, and high ionic conductivity. Expectedly, the assembled batteries based on our novel composite separator show many impressive performances. In Li-Li cells, the cycling life up to 1600 h at an areal current density of 2 mA/cm can be realized; in Li-Cu cells, the cycling life of more than 1000 h with a high Coulombic efficiency of 99.9% at 1 mA/cm can be achieved. More interestingly, the Li/LiFePO full batteries constructed by the novel AAO@PVDF-HFP composite separators show a high discharge capacity of 140 mAh/g and weak capacity decays even after 360 cycles. The novel design of the separator with ordered channels and polar groups presents an effective route for developing the next-generation LMBs.

摘要

锂(Li)金属作为阳极替代传统石墨可大幅提高锂电池的比能量密度。然而,锂金属在电镀/脱镀过程中表面反复形成固体电解质界面导致库仑效率较低,且循环过程中锂枝晶的生长可能会导致电池短路甚至爆炸,这两者都阻碍了锂金属在锂金属电池(LMBs)中的商业应用。在此,我们报道了一种通过两步法制备的抗枝晶AAO@PVDF-HFP复合隔膜,其具有有序的孔道以及孔道中的极性基团。这种新型复合隔膜对电解质具有良好的润湿性、高机械性能和高离子电导率。不出所料,基于我们新型复合隔膜组装的电池展现出许多令人印象深刻的性能。在锂-锂电池中,在面积电流密度为2 mA/cm²时可实现高达1600 h的循环寿命;在锂-铜电池中,在1 mA/cm²时可实现超过1000 h的循环寿命且库仑效率高达99.9%。更有趣的是,由新型AAO@PVDF-HFP复合隔膜构建的锂/磷酸铁锂全电池显示出140 mAh/g的高放电容量,即使在360次循环后容量衰减也很微弱。具有有序通道和极性基团的隔膜的新颖设计为开发下一代LMBs提供了一条有效途径。

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