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用于固态锂电池的双层膜电解质中的聚多巴胺包覆钛酸镧锂

Polydopamine Coated Lithium Lanthanum Titanate in Bilayer Membrane Electrolytes for Solid Lithium Batteries.

作者信息

Jia Mengyang, Bi Zhijie, Shi Chuan, Zhao Ning, Guo Xiangxin

机构信息

College of Physics, Qingdao University, Qingdao 266071, China.

出版信息

ACS Appl Mater Interfaces. 2020 Oct 14;12(41):46231-46238. doi: 10.1021/acsami.0c14211. Epub 2020 Oct 1.

Abstract

The demand for solid lithium batteries with high energy density and safety boosts the development of solid-state electrolytes in which composite membrane electrolytes consisting of polymers and ceramic fillers are attractive. As the common ceramic filler, perovskite-structured LiLaTiO (LLTO) has great advantage on cost and environmental friendliness by using earth-abundant raw materials in the production. Nevertheless, the chemical instability of LLTO against Li-metal hinders its application. Herein, LLTO particles are coated by biodegradable polydopamine (PDA) layers and united with poly(vinylidene fluoride) (PVDF) to prepare composite electrolytes which perform superior stability against Li-metal. Besides, PVDF:LLTO membranes are assembled at cathode sides and show high voltage tolerance. The Li/NiMnCoO cells with bilayer membrane electrolytes can deliver the specific capacity of 158.2 mAh g and maintain 83% capacity after 100 cycles at 0.1 C. Furthermore, based on the bilayer membranes with outstanding flexibility and stretchability, the cells can even survive under several extreme conditions, such as bending, twisting, crimping, and stretching. This study offers an environmentally friendly strategy to improve the stability of LLTO against Li and sheds light on the development of cost-effective solid electrolytes.

摘要

对具有高能量密度和安全性的固态锂电池的需求推动了固态电解质的发展,其中由聚合物和陶瓷填料组成的复合膜电解质颇具吸引力。作为常见的陶瓷填料,钙钛矿结构的LiLaTiO(LLTO)在生产中使用储量丰富的原材料,在成本和环境友好性方面具有很大优势。然而,LLTO与锂金属的化学不稳定性阻碍了其应用。在此,LLTO颗粒被可生物降解的聚多巴胺(PDA)层包覆,并与聚偏氟乙烯(PVDF)结合制备复合电解质,该复合电解质对锂金属表现出优异的稳定性。此外,PVDF:LLTO膜组装在阴极侧并显示出高电压耐受性。具有双层膜电解质的Li/NiMnCoO电池在0.1 C下可提供158.2 mAh g的比容量,并在100次循环后保持83%的容量。此外,基于具有出色柔韧性和拉伸性的双层膜,电池甚至可以在弯曲、扭曲、压接和拉伸等几种极端条件下存活。这项研究提供了一种环境友好的策略来提高LLTO对锂的稳定性,并为开发具有成本效益的固体电解质提供了思路。

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