LiF‐Rich Cathode Electrolyte Interphases Homogenizing Li <sup>+</sup> Fluxes toward Stable Interface in Li‐Rich Mn‐Based Cathodes

Q Qinting Jiang (Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China) M Ming Li J Jun Li J Jingjing Wang G Gaini Zhang J Jing Wang (Hunan Cancer Hospital Changsha China) J Jiaxuan Zuo (Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China) G Guiqiang Cao (Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China) R Ruixian Duan Y Youchen Hao (Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China) M Mengjiao Li Z Zihao Yang H Haofei Yang (Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China) M Mengxin Bai (Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China) X Xuexia Song Y Yukun Xi (Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China) W Wenbin Li (College of Life Science, Liaoning Normal University, Dalian, China.) X Xueliang Sun X Xifei Li

Abstract

Abstract Constructing a stable cathode‐electrolyte interphase (CEI) is crucial to enhance the battery performance of Li‐rich Mn‐based oxide (LMO) cathodes. To achieve an ideal CEI, a gas‐phase fluorination technique is proposed to pre‐structure a robust LiF layer (≈1 nm) on the LMO surface. The designed LiF layer effectively modulates the electric field distribution on the electrode surface and mitigates undesirable side reactions between the electrode and electrolyte, thereby promoting the formation of a uniform LiF‐rich CEI layer on the LMO‐F‐1. The optimized CEI facilitates homogeneous Li + fluxes across the electrode surface and enhances Li + diffusion in the electrode during (de)intercalation, contributing to a stable electrode‐electrolyte interface. Moreover, the robust LiF‐rich CEI layer effectively suppresses the decomposition of lithium salts in the electrolyte and reduces autocatalytic side reactions triggered by the by‐products. In addition, it improves the structural stability of LMO by increasing the formation energies of oxygen and manganese vacancies. As a result, the modified LMO with the LiF‐rich CEI retains 95% of its initial capacity after 100 cycles, demonstrating remarkable electrochemical stability. The proposed gas‐phase Li + flux homogenization strategy offers a promising avenue for enhancing the interface stability of high‐voltage cathode materials with lithium storage.

Article Details

Volume / Issue Vol. 37, Issue 15
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (19)

Q

Qinting Jiang

Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China

M

Ming Li

J

Jun Li

J

Jingjing Wang

G

Gaini Zhang

J

Jing Wang

Hunan Cancer Hospital Changsha China

J

Jiaxuan Zuo

Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China

G

Guiqiang Cao

Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China

R

Ruixian Duan

Y

Youchen Hao

Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China

M

Mengjiao Li

Z

Zihao Yang

H

Haofei Yang

Shaanxi Engineering Research Center of Key Materials for Lithium/Sodium‐ion Batteries Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi China

M

Mengxin Bai

Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China

X

Xuexia Song

Y

Yukun Xi

Institute of Advanced Electrochemical Energy &amp; School of Materials Science and Engineering Xi'an University of Technology Xi'an Shaanxi 710048 P. R. China

W

Wenbin Li

College of Life Science, Liaoning Normal University, Dalian, China.

X

Xueliang Sun

X

Xifei Li