Functional Copolymer Derived Self‐Adapting LiF‐Rich Interphase Toward Deep Cycling Lithium Metal Batteries

Author:

Wang Aoxuan1,Nie Yanxin1,Zhao Yumeng1,Xu Dehua2,Zhang Linxue1,Zhao Zhengfei1,Ren Libin2,Zhou Shoubin3,Liu Xingjiang12,Luo Jiayan45ORCID

Affiliation:

1. Key Laboratory for Green Chemical Technology of Ministry of Education School of Chemical Engineering and Technology Tianjin University Tianjin 300072 China

2. National Key Laboratory of Science and Technology on Power Sources Tianjin Institute of Power Sources Tianjin 300384 China

3. Hua Fu High Technology Energy Storage CO., LTD Yangzhou 225600 China

4. Shanghai Key Lab of Advanced High‐temperature Materials and Precision Forming State Key Lab of Metal Matrix Composites School of Materials Science and Engineering Shanghai Jiao Tong University Shanghai 200240 China

5. Shanghai Jiao Tong University Shaoxing Research Institute of Renewable Energy and Molecular Engineering Shaoxing 312000 China

Abstract

AbstractLithium metal batteries (LMBs) are the best candidates for high‐energy density system. However, the unstable solid electrolyte interphase (SEI) caused by notorious lithium dendrite growth and huge volume fluctuation under practical conditions hinders its commercialization. Here, a functional copolymer composed of monomer is designed with ordered −CF2− groups grafted to viscoelastic backbone to provide homogeneous and self‐adapting in situ LiF‐rich interface. Hence, the robust interface facilitates rapid Li+ flux and suppresses dendritic Li growth. Furthermore, an elastic composite lithium metal anode (FELMA) based on the designed functional copolymer is fabricated through a cost‐effective approach. The FELMA shows excellent cycle stability with ultra‐low volume expansion rate of 0.16% per cycle after 200 cycles at the condition of 3 mA cm−2–3 mAh cm−2. The full batteries assembled with high‐loading LiNi0.8Co0.1Mn0.1O2 (NCM811, 4.1 mAh cm−2) cathode can maintain 80% capacity retention after 320 cycles under N/P = 2.17 and E/C = 2.68 g Ah−1, with the cycling life increased by 220% than Li||NCM811. A prototype 418 Wh kg−1 pouch cell (5.16 Ah) with N/P ratio of 0.88 and E/C ratio of 2.39 g Ah−1 shows stable cycling.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Tianjin Municipality

Publisher

Wiley

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