Lithium Batteries and the Solid Electrolyte Interphase (SEI)—Progress and Outlook

Author:

Adenusi Henry1,Chass Gregory A.234,Passerini Stefano567,Tian Kun V.348ORCID,Chen Guanhua19

Affiliation:

1. Hong Kong Quantum AI Lab 17 Science Park West Avenue Hong Kong China

2. Department of Chemistry School of Physical and Chemical Sciences Queen Mary University of London London E1 4NS UK

3. Department of Chemistry and Biological Chemistry McMaster University Hamilton L8S 4L8 Canada

4. Faculty of Land and Food Systems The University of British Columbia Vancouver V6T 1Z4 Canada

5. Department of Chemistry Sapienza University of Rome Rome 00185 Italy

6. Helmholtz Institute Ulm Helmholtzstrasse 11 89081 Ulm Germany

7. Karlsruhe Institute of Technology P.O. Box 3640 D‐76021 Karlsruhe Germany

8. Department of Chemistry and Chemical sciences of Pharmacy Sapienza University of Rome Rome 00185 Italy

9. Department of Chemistry The University of Hong Kong Hong Kong China

Abstract

AbstractInterfacial dynamics within chemical systems such as electron and ion transport processes have relevance in the rational optimization of electrochemical energy storage materials and devices. Evolving the understanding of fundamental electrochemistry at interfaces would also help in the understanding of relevant phenomena in biological, microbial, pharmaceutical, electronic, and photonic systems. In lithium‐ion batteries, the electrochemical instability of the electrolyte and its ensuing reactive decomposition proceeds at the anode surface within the Helmholtz double layer resulting in a buildup of the reductive products, forming the solid electrolyte interphase (SEI). This review summarizes relevant aspects of the SEI including formation, composition, dynamic structure, and reaction mechanisms, focusing primarily on the graphite anode with insights into the lithium metal anode. Furthermore, the influence of the electrolyte and electrode materials on SEI structure and properties is discussed. An update is also presented on state‐of‐the‐art approaches to quantitatively characterize the structure and changing properties of the SEI. Lastly, a framework evaluating the standing problems and future research directions including feasible computational, machine learning, and experimental approaches are outlined.

Funder

Science and Technology Facilities Council

Helmholtz Association

Sapienza Università di Roma

McMaster University

University of British Columbia

Horizon 2020 Framework Programme

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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