Self‐Regulatory Lean‐Electrolyte Flow for Building 600 Wh Kg<sup>−1</sup>‐Level Rechargeable Lithium Batteries
Abstract
AbstractReducing excess electrolytes offers a promising approach to improve the specific energy of electrochemical energy storage devices. However, using lean electrolytes presents a significant challenge for porous electrode materials due to heterogeneous wetting. The spontaneous wetting of nano‐ or meso‐pores within particles, though seldom discussed, adversely affects wetting under lean electrolyte conditions. Herein, this undesired wetting behavior is mitigated by enlarging the pore‐throat ratio, enabling Li‐rich layered oxide to function effectively at very low electrolyte/capacity (E/C) ratio of 1.4 g Ah−1. The resulting pouch cell achieves 606 Wh kg−1 and retains 80% capacity (75% energy) after 70 cycles. Through imaging techniques and molecular dynamics simulations, it is demonstrated that the pore‐throat ratio effectively determines the permeability of electrolyte within particles. By elucidating pore‐relating mechanisms, this work unveils promising potential of manipulating pore structures in porous electrode materials, an approach that can be applied to improve the specific energy of other devices including semi‐solid‐state lithium batteries.
Article Details
Authors (12)
Zhepu Shi
Peng Hao
Yangcai He
Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences (CAS) Ningbo 315201 China
Yibin Zhang
Shoulei Hu
i‐Lab, CAS Center for Excellence in Nanoscience, Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou 215123 China
Yanbin Shen
Qingwen Gu
Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences (CAS) Ningbo 315201 China
Ling Zhang
George Zheng Chen
Department of Chemical and Environmental Engineering Faculty of Engineering The University of Nottingham Nottingham NG7 2RD UK
Di Hu
Department of Biostatistics, Gillings School of Global Public Health, University of North Carolina
Zhaoping Liu
Bao Qiu