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用于无枝晶和高温锂金属电池的双功能隔膜:由3D增强聚酰亚胺微球保护层实现的离子传输调控

Dual-functional Separators Regulating Ion Transport Enabled by 3D-Reinforced Polyimide Microspheres Protective Layer for Dendrite-Free and High-Temperature Lithium Metal Batteries.

作者信息

Wang Zhaoyi, Liu Fangzhou, Li Xiaogang, Liu Bingxue, Lin Daolei, Tian Guofeng, Qi Shengli, Wu Dezhen

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.

China Automotive Battery Research Institute Co., Ltd, Beijing 100088, China.

出版信息

ACS Appl Mater Interfaces. 2024 May 8;16(18):23826-23837. doi: 10.1021/acsami.3c19477. Epub 2024 Apr 24.

Abstract

High-energy-density lithium metal batteries (LMBs) are confronted with crucial concerns of security and a short cycle lifespan caused by the uncontrollable formation of lithium (Li) dendrites. The poor thermal stability and heterogeneous Li deposition of conventional polyolefin separators often cause battery short circuiting and thermal runaway in LMBs. Herein, a novel dual-functional PE composite separator (PI-COOH/PE) coated by carboxyl polyimide (PI) microspheres is fabricated by an etching-acidification method. The three-dimensional (3D) high-temp PI microsphere with rich carboxyl groups on the surface improve the security of LMBs at extremely high temperatures and facilitate the formation of a stable and uniform SEI layer, which contributes to accelerating the Li transport and stabilizing the formation of the SEI layer. Consequently, the Li symmetric cell assembled with the (PI-COOH)/PE separator exhibits stable overpotential over 3000 h, and the corresponding Li//NCM811 full cells also show a high-level discharge capacity of 146.6 mAh g at 5 C. Meanwhile, it also demonstrates outstanding cycling stability and thermal safety, which can survive continuously over 160 min at 140 °C (vs 21 min for PE). The above results indicate the (PI-COOH)/PE separator constructed by a low-cost and industrial-friendly strategy simultaneously addresses high-temperature stability and dendrite resistance.

摘要

高能量密度锂金属电池(LMBs)面临着由锂(Li)枝晶不可控形成所导致的安全性关键问题以及短循环寿命问题。传统聚烯烃隔膜较差的热稳定性和不均匀的锂沉积常常导致LMBs电池短路和热失控。在此,通过蚀刻-酸化法制备了一种由羧基聚酰亚胺(PI)微球包覆的新型双功能PE复合隔膜(PI-COOH/PE)。表面带有丰富羧基的三维(3D)高温PI微球提高了LMBs在极高温度下的安全性,并促进了稳定且均匀的固体电解质界面(SEI)层的形成,这有助于加速锂传输并稳定SEI层的形成。因此,采用(PI-COOH)/PE隔膜组装的锂对称电池在3000小时以上表现出稳定的过电位,相应的Li//NCM811全电池在5C下也显示出146.6 mAh g的高水平放电容量。同时,它还表现出出色的循环稳定性和热安全性,在140°C下可连续存活超过160分钟(相比之下,PE为21分钟)。上述结果表明,通过低成本且对工业友好的策略构建的(PI-COOH)/PE隔膜同时解决了高温稳定性和抗枝晶问题。

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