Insight into the Interface Design for Li Metal Anode: Organic‐Rich or Inorganic‐Rich

Author:

Wang Yijia1,Hou Hongyu2,Tantratian Karnpiwat3,Goncharova Lyudmila V.4,Fu Bolin1,Jin Enzhong1,Pirayesh Parham1,Abdolvand Hamid1,Pang Xin5,Chen Lei3,Cao Changhong2,Zhao Yang1ORCID

Affiliation:

1. Department of Mechanical and Materials Engineering University of Western Ontario London Ontario N6A 5B9 Canada

2. Department of Mechanical Engineering McGill University Montreal Quebec H3A 0C3 Canada

3. Department of Mechanical Engineering University of Michigan−Dearborn Dearborn MI 48128 USA

4. Department of Physics and Astronomy University of Western Ontario London Ontario N6A 3K7 Canada

5. CanmetMATERIALS Natural Resources Canada 183 Longwood Road South Hamilton Ontario L8P0A5 Canada

Abstract

AbstractMicrocracks and surface heterogeneity in solid‐electrolyte interphase (SEI) induced by repeated plating/stripping of lithium (Li) metal exacerbate SEI fracture propagation and dendrite growth, which lead to unsatisfactory Coulombic efficiency and limited cycle life of Li metal anode. In this study, the hybrid artificial interfaces with controlled organic–inorganic ratios are designed and deep insight into their impacts on the electro‐chemo‐mechanical properties is obtained. The organic–inorganic ratios in the hybrid interfaces influence the mechanical properties, lithiophilicity, and diffusion kinetics of the interfaces, which in turn affect the nucleation, early growth, and repeated deposition/dissolution behavior of Li. It is found that increasing the inorganic ratio in the hybrid interface can realize significantly enhanced electrochemical performances. This work answers a key question for hybrid interfaces: should organic‐rich or inorganic‐rich be preferred in the hybrid interface? It is believed that this work will guide the future design of hybrid interfaces for Li metal anode and open up opportunities for the realization of next‐generation Li metal batteries.

Funder

Western University

Natural Sciences and Engineering Research Council of Canada

Canada Foundation for Innovation

Publisher

Wiley

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