Layered Cathode with Ultralow Strain Empowers Rapid‐Charging and Slow‐Discharging Capability in Sodium Ion Battery

Author:

Yang Maolin1,Chen Ziwei1,Huang Zhongyuan1,Wang Rui2,Ji Wenhai3,Zhou Dong4,Zeng Tao1,Li Yongsheng1,Wang Jun5,Wang Liguang6,Yang Tingting17,Xiao Yinguo1ORCID

Affiliation:

1. School of Advanced Materials Peking University Shenzhen Graduate School Shenzhen 518055 P. R. China

2. Department of Engineering University of Cambridge Cambridge CB30FS UK

3. Spallation Neutron Source Science Center Dongguan 523803 P. R. China

4. School of Advanced Energy Shenzhen Campus of Sun Yat‐sen University Shenzhen 518107 P. R. China

5. School of Innovation and Entrepreneurship Southern University of Science and Technology Shenzhen 518055 P. R. China

6. College of Chemical and Biological Engineering Zhejiang University Hangzhou 310000 P. R. China

7. Ernst Ruska‐Centre for Microscopy and Spectroscopy with Electrons Forschungszentrum Jülich GmbH 52428 Jülich Germany

Abstract

AbstractThe development of the electric vehicle industry has spurred demand for secondary batteries capable of rapid‐charging and slow‐discharging. Among them, sodium‐ion batteries (SIBs) with layered oxide as the cathode exhibit competitive advantages due to their comprehensive electrochemical performance. However, to meet the requirements of rapid‐charging and slow‐discharging scenarios, it is necessary to further enhance the rate performance of the cathode material to achieve symmetrical capacity at different rates. Simultaneously, minimizing lattice strain during asymmetric electrochemical processes is also significant in alleviating strain accumulation. In this study, the ordered distribution of transition metal layers and the diffusion pathway of sodium ions are optimized through targeted K‐doping of sodium layers, leading to a reduction of the diffusion barrier and endowment of prominent rate performance. At a 20C rate, the capacity of the cathode can reach 94% of that at a 0.1C rate. Additionally, the rivet effect of the sodium layers resulted in a global volume strain of only 0.03% for the modified cathode during charging at a 10C rate and discharging at a 1C rate. In summary, high‐performance SIBs, with promising prospects for rapid‐charging and slow‐discharging capability, are obtained through the regulation of sodium layers, opening up new avenues for commercial applications.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

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