MRS Meetings and Events

 

EN10.02.05 2023 MRS Fall Meeting

Elucidating the Role of Prelithiation in Si-Based Anodes for Interface Stabilization

When and Where

Nov 27, 2023
2:15pm - 2:30pm

Hynes, Level 3, Room 302

Presenter

Co-Author(s)

Shuang Bai1,Y. Shirley Meng1

University of California, San Diego1

Abstract

Shuang Bai1,Y. Shirley Meng1

University of California, San Diego1
Prelithiation as a facile and effective method to compensate the lithium inventory loss in the initial cycle has progressed considerably both on anode and cathode sides. However, much less research has been devoted to the prelithiation effect on the interface stabilization for long-term cycling of Si-based anodes. An in-depth quantitative analysis of the interface that forms during the prelithiation of SiOx is presented here and the results are compared with prelithiaton of Si anodes. Local structure probe combined with detailed electrochemical analysis reveals that a characteristic mosaic interface is formed on both prelithiated SiOx and Si anodes. This mosaic interface containing multiple lithium silicates phases, is fundamentally different from the solid electrolyte interface (SEI) formed without prelithiation. The ideal conductivity and mechanical properties of lithium silicates enable improved cycling stability of both prelithiated anodes. With a higher ratio of lithium silicates due to the oxygen participation, prelithiated SiO1.3 anode improves the initial coulombic efficiency to 94% in full cell and delivers good cycling retention (77%) after 200 cycles. The insights provided in this work can be used to further optimize high Si loading (>70% by weight) based anode in future high energy density batteries.

Keywords

Si | transmission electron microscopy (TEM)

Symposium Organizers

Ling Chen, Toyota Research Institute of North America
Zhenxing Feng, Oregon State University
Kristina Tshculik, Ruhr University
Hua Zhou, Argonne National Laboratory

Symposium Support

Silver
Next Materials | Elsevier

Bronze
Nano-Micro Letters | Springer Nature

Publishing Alliance

MRS publishes with Springer Nature