Minimize the Electrode Concentration Polarization for High‐Power Lithium Batteries

Author:

Chen Weibin1,Wang Kai23,Li Yonglong2,Chen Jing4,Wang Hongbin1,Li Liewu1,Li Hao5,Ren Xiangzhong1,Ouyang Xiaoping14,Liu Jianhong1,Pan Feng5ORCID,Xiao Biwei6,Zhang Qianling1ORCID,Hu Jiangtao1ORCID

Affiliation:

1. Graphene Composite Research Center College of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518060 P. R. China

2. Sino‐French Institute of Nuclear Engineering and Technology Sun Yat‐Sen University Zhuhai 528478 P. R. China

3. Nuclear Professional School School of Engineering The University of Tokyo 2–22 Shirakata Tokai‐mura Ibaraki 319–1188 Japan

4. School of Materials Science and Engineering Xiangtan University Xiangtan 411105 P. R. China

5. School of Advanced Materials Shenzhen Graduate School Peking University Shenzhen 518060 P. R. China

6. GRINM (Guangdong) Research Institute for Advanced Materials and Technology Foshan Guangdong 528051 P. R. China

Abstract

AbstractHigh‐loading electrode is a prerequisite for achieving high energy density in industrial applications of lithium‐ion batteries. However, an increased loading leads to elevated battery polarization and reduced battery power density, which presents a significant technical bottleneck in the industry. The present study focuses on designing a rapid electrolyte diffusion pathway to diminish lithium concentration polarization for the high‐loading LiNi0.83Mn0.12Co0.05O2 (NMC83) electrode by employing two layers of NMC83 materials with different sizes. This innovative architecture demonstrates exceptional rate performance even under challenging conditions with high‐loading and high‐rate. Additionally, the interrelationships between electrode structure, process route, porosity, and optimal thickness ratio between layers are discussed, providing valuable guidance for industrial promotion and application. The designed L‐Dry‐S electrode structure (coating large particles first and then small particles) effectively mitigates concentration polarization in the thick electrode, which is attributed to the fast electrolyte diffusion channel and the differential reaction speeds of NMC83 particles with varying sizes. The knowledge from this work is broadly applicable to other material systems.

Funder

Basic and Applied Basic Research Foundation of Guangdong Province

Shenzhen Environmental Science and New Energy Technology Engineering Laboratory

Guangdong Provincial Department of Science and Technology

National Natural Science Foundation of China

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

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