A path towards high lithium-metal electrode coulombic efficiency based on electrolyte interaction motif descriptor

R Ruhong Li (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) X Xiaoteng Huang H Haikuo Zhang (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) J Jinze Wang (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) Y Yingzhu Fan Y Yiqiang Huang J Jia Liu M Ming Yang Y Yuan Yu X Xuezhang Xiao Y Yuanzhong Tan H Hao Bin Wu (Institute for Composites Science Innovation (InCSI), School of Materials Science and Engineering, State Key Laboratory of Silicon and Advanced Semiconductor Materials, Zhejiang University) L Liwu Fan T Tao Deng (China-UK Low Carbon College) L Lixin Chen (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering) Y Yanbin Shen X Xiulin Fan (State Key Laboratory of Silicon and Advanced Semiconductor Materials, School of Materials Science and Engineering)

Abstract

Abstract The fundamental interactions and the as-derived microstructures among electrolyte components play a pivotal role in determining the bulk and interfacial properties of the electrolytes. However, the complex structure-property relationships remain elusive, leading to uncontrollable physicochemical characteristics of electrolytes and unsatisfied battery performance. Herein, we propose two interaction motif descriptors to quantify ion-solvent interactions spanning electrostatic to dispersion regimes. These descriptors are highly relevant to salt dissolution, phase miscibility, and electrode-electrolyte interface chemistries. Guided by the principle of minimizing ion-solvent and solvent-solvent interactions while ensuring sufficient salt dissociation, a representative electrolyte, i.e., lithium bis(fluorosulfonyl)imide dissolved in trimethyl methoxysilane and 1,3,5-trifluorobenzene with a molar ratio of 1:2.5:3.0, is designed, which achieves ~99.7% (±0.2%) Li plating/stripping Coulombic efficiency and endows 4.5 V Li||LiCoO2 with 90% capacity retention after 600 cycles at 0.2 C/0.5 C charge/discharge rate. Notably, Cu||LiNi0.5Co0.2Mn0.3O2 pouch cells with this electrolyte sustain over 100 stable cycles. By establishing quantitative relationships between interaction motifs and electrolyte functionalities, this work provides a universal framework for rational electrolyte design, paving the way for highly reversible lithium metal batteries.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 20, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

R

Ruhong Li

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

X

Xiaoteng Huang

H

Haikuo Zhang

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

J

Jinze Wang

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

Y

Yingzhu Fan

Y

Yiqiang Huang

J

Jia Liu

M

Ming Yang

Y

Yuan Yu

X

Xuezhang Xiao

Y

Yuanzhong Tan

H

Hao Bin Wu

Institute for Composites Science Innovation (InCSI), School of Materials Science and Engineering, State Key Laboratory of Silicon and Advanced Semiconductor Materials, Zhejiang University

L

Liwu Fan

T

Tao Deng

China-UK Low Carbon College

L

Lixin Chen

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

Y

Yanbin Shen

X

Xiulin Fan

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