Journal Home > Volume 16 , Issue 6

In order to address the issues of low initial Coulombic efficiency of SiOx-C composite anode due to the formation of solid electrolyte interphase, irreversible conversion reaction, and large volume change, the prelithiation method using metal lithium has been employed as one of effective solutions. However, violent side reactions with liquid electrolyte for prelithiation lead to low prelithiation efficiency and induce poor interface between the SiOx-C electrode and liquid electrolyte. Here, a new prelithiation method with so called solid-state corrosion of lithium is developed. By replacing liquid electrolyte with solid-state electrolyte of carbon-incorporated lithium phosphorus oxynitride (LiCPON), not only various side reactions associated with metal lithium are avoided, but also the perfect interface is achieved from the decomposition products of LiCPON. The successful implementation of solid-state corrosion prelithiation can be confirmed by changes in optical image, scanning electron microscopy, and X-ray diffraction. Compared with pristine electrode, the initial Coulombic efficiency of the prelithiated electrode using solid electrolyte can be increased by about 10%, reaching 98.6% in half cell and 88.9% in full cell. Compared with prelithiated electrode using liquid electrolyte, the prelithiation efficiency of the prelithiated anode with solid-state corrosion can be increased from 25.7% to 82.8%. Solid-state corrosion of lithium is expected to become a useful method for prelithiation of SiOx-C composite electrode with high initial Coulombic efficiency and large prelithiation efficiency.

File
5290_ESM.pdf (1.5 MB)
Publication history
Copyright
Acknowledgements

Publication history

Received: 18 August 2022
Revised: 03 November 2022
Accepted: 06 November 2022
Published: 21 December 2022
Issue date: June 2023

Copyright

© Tsinghua University Press 2022

Acknowledgements

Acknowledgements

This work was financially supported by the National Natural Science Foundation of China (No. 22279022), the Joint Funds of the National Natural Science Foundation of China (No. U20A20336) and the Tianmu Lake Institute of Advanced Energy Storage Technologies Scientist Studio Program (No. TIES-SS0002).

Return