A Highly Stable Practical Li Metal Anode via Interphase Regulation and Nucleation Induction

Author:

Xia Shuixin12ORCID,Jiang Zongyan1,Zhao Xiaoyu1,Yuwono Jodie A.2,Zhang Xun3,Zhang Xiangfeng1,Yang Guangzhi1,Yang Junhe1,Jiang Yong4,Mao Jianfeng2,Davey Kenneth2,Guo Zaiping2ORCID,Zheng Shiyou1

Affiliation:

1. School of Materials and Chemistry University of Shanghai for Science and Technology Shanghai 200093 China

2. School of Chemical Engineering The University of Adelaide Adelaide South Australia 5005 Australia

3. Ganjiang Innovation Academy Chinese Academy of Sciences Ganzhou 341000 China

4. School of Environmental and Chemical Engineering Shanghai University Shanghai 200444 China

Abstract

AbstractThe practical utilization of Li metal anodes has been significantly plagued by the challenges of uncontrollable dendritic Li growth and poor interphase instability. Here, the study reports a novel strategy to strengthen interphase and give highly efficient active seeds concurrently to stabilize Li metal via a highly lithiophilic In2O3 decorated porous scaffold. In situ configurated fast‐ion‐transport Li2O‐strengthened interphase layer cooperatively with highly efficient Li13In3 nucleation induction can endow the uniform Li nucleation/growth and high Li utilization efficiency. As a result, the achieved modified Li metal manifests high Coulombic efficiency, ultrahigh rate performance (5 mA cm−2), and ultra‐long lifespan cycling durability (7975 cycles). Importantly, the established Li|LiFePO4 cells exhibit long‐term cycling durability over 600 cycles at 1 C with an ultralow decay rate of ca. 0.017% per cycle. Moreover, the Li|LiCoO2 pouch cells with ultrahigh areal capacity of ca. 3.89 mAh cm−2 also exhibit extraordinarily prolonged cycling performance with excellent capacity retention despite extremely harsh cycling conditions of low negative‐to‐positive‐capacity (N/P) ratio of ca. 1.7 and lean electrolyte of ca. 4.9 g Ah−1. This work enlightens a facile and effective avenue toward highly stable Li metal anode toward reliable practicability.

Funder

National Natural Science Foundation of China

Shanghai Rising-Star Program

Natural Science Foundation of Shanghai Municipality

Australian Research Council

Publisher

Wiley

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