Stabilizing Layered Oxide Cathodes Based on Universal Surface Residual Alkali Conversion Chemistry for Rechargeable Secondary Batteries

Y Yi‐Feng Liu (College of Chemical Engineering Sichuan University Chengdu P. R. China) H Han‐Xiao Liu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China) Y Yan‐Fang Zhu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) H Hong‐Rui Wang (College of Science National University of Defense Technology Changsha 410073 P. R. China) J Jia‐Yang Li (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) Y Yong‐Chun Li (Ångström Laboratory, Department of Chemistry Uppsala University Uppsala SE 751 21 Sweden) H Hai‐Yan Hu (College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China) Z Zhen‐Guo Wu (College of Chemical Engineering Sichuan University Chengdu P. R. China) X Xiao‐Dong Guo (College of Chemical Engineering Sichuan University Chengdu P. R. China) Y Yao Xiao (School of Chemistry and Chemical Engineering)

Abstract

Abstract Layered transition metal oxides (LTMOs) are attractive cathode candidates for rechargeable secondary batteries because of their high theoretical capacity. Unfortunately, LTMOs suffer from severe capacity attenuation, voltage decay, and sluggish kinetics, resulting from irreversible lattice oxygen evolution and unstable cathode‐electrolyte interface. Besides, LTMOs accumulate surface residual alkali species, like hydroxides and carbonates, during synthesis, limiting their practical application. Herein, a universal strategy is suggested to in situ convert surface residual alkali into a stable polymer coating layer for LTMOs, thus turning wastes into treasure. The formation process of polymer coating involves NH 4 F treatment to consume residual alkali, then utilizing generated fluorides to induce the ring‐opening polymerization of tetrahydrofuran. Implementing this strategy to Li‐rich Mn‐based cathode materials (LRM) results in a notable reduction in voltage hysteresis, along with enhanced kinetics and cycling stability in lithium‐ion batteries. With this layer of encapsulation, surface lattice oxygen release and layered‐to‐spinel phase transition of LRM are significantly alleviated with minimal mechanical degradation and surface parasitic reactions. Such strategy can also be applied to air‐sensitive sodium‐rich LTMOs in sodium‐ion batteries, which showcases superior universality. This work might provide a promising solution to overcome residual alkali and interfacial instability issues for LTMOs in practical application.

Article Details

Volume / Issue Vol. 37, Issue 9
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Y

Yi‐Feng Liu

College of Chemical Engineering Sichuan University Chengdu P. R. China

H

Han‐Xiao Liu

College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P.R. China

Y

Yan‐Fang Zhu

College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China

H

Hong‐Rui Wang

College of Science National University of Defense Technology Changsha 410073 P. R. China

J

Jia‐Yang Li

College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China

Y

Yong‐Chun Li

Ångström Laboratory, Department of Chemistry Uppsala University Uppsala SE 751 21 Sweden

H

Hai‐Yan Hu

College of Chemistry and Materials Engineering Wenzhou University Wenzhou P. R. China

Z

Zhen‐Guo Wu

College of Chemical Engineering Sichuan University Chengdu P. R. China

X

Xiao‐Dong Guo

College of Chemical Engineering Sichuan University Chengdu P. R. China

Y

Yao Xiao

School of Chemistry and Chemical Engineering