Regulating Solvating Sites for Stable High‐Voltage Lithium Metal Batteries

Z Zeyuan Liu (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering Zhejiang University Hangzhou 310027 China) S Shuoqing Zhang (China-UK Low Carbon College) H Haikuo Zhang (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) B Baochen Ma (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) H Haotian Zhu (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) T Tao Zhou (College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.) L Long Li X Xuezhang Xiao R Ruhong Li (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) L Lixin Chen (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) T Tao Deng (China-UK Low Carbon College) X Xiulin Fan (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering)

Abstract

Abstract The long‐lasting stability of high‐voltage lithium metal batteries (LMBs) critically rely on both the cathodic and anodic stability of electrolytes, which can be enhanced by increasing the salt‐to‐solvent molar ratio. However, this approach is limited by solubility constraints. In this work, we introduce a dual‐anchoring strategy to regulate the solvating sites of glymes via directional atomic interactions. Specifically, F δ− –H δ+ interactions transform the Li + ‐glyme coordination and induce more anion coordination within Li + primary solvation sheath, whereas H δ+ –O δ− interactions reduce the electron density at free oxygen sites, thus raising the oxidational potential of glyme and enhancing the overall oxidation stability of electrolytes. This strategy results in an electrolyte with exceptional compatibility with both lithium metal anode (LMA) and high‐voltage cathode, enabling LMA with an ultrahigh coulombic efficiency (CE) of 99.76%. Furthermore, the assembled LMBs exhibit extended lifespans, retaining 80% of their capacity under aggressive conditions: 834 and 370 cycles at 4.4 and 4.5 V, respectively, for 30‐µm‐Li||2.0‐mAh cm −2 LiNi 0.8 Co 0.1 Mn 0.1 O 2 cells and 100 cycles for anode‐free Cu||LiNi 0.5 Co 0.2 Mn 0.3 O 2 pouch cells. This work offers novel insights into the advancement of next‐generation LMBs based on ether‐based electrolytes.

Article Details

Volume / Issue Vol. 64, Issue 31
Published July 28, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

Z

Zeyuan Liu

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering Zhejiang University Hangzhou 310027 China

S

Shuoqing Zhang

China-UK Low Carbon College

H

Haikuo Zhang

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering

B

Baochen Ma

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering

H

Haotian Zhu

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering

T

Tao Zhou

College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.

L

Long Li

X

Xuezhang Xiao

R

Ruhong Li

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering

L

Lixin Chen

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering

T

Tao Deng

China-UK Low Carbon College

X

Xiulin Fan

State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering