Regulating Solvation Chemistries via Electric‐Field‐Induced Locally Concentrated Suspension Electrolytes for Lithium Metal Batteries

Z Zhengyu Ju (Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin) T Tianrui Zheng (Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin) A Amy C. Marschilok (Institute of Sustainability, Electrification and Energy, Stony Brook University) E Esther S. Takeuchi (Institute of Sustainability, Electrification and Energy, Stony Brook University) K Kenneth J. Takeuchi (Institute of Sustainability, Electrification and Energy, Stony Brook University) G Guihua Yu (Materials Science and Engineering Program and Walker Department of Mechanical Engineering)

Abstract

Abstract Lithium‐ion batteries, as sustainable alternatives to fossil fuels, are in great demand for powering modern society. Their energy density can further be significantly improved by using Li metal anodes; however, Li metal suffers from the critical challenges of unstable solid‐electrolyte interphase (SEI) along with uncontrollable dendritic Li growth. Here, a universal electrolyte design principle is proposed and demonstrated by using suspension electrolytes with charged additives. The solvation structure of Li ions can be regulated, as negatively charged additives show strong electrostatic interaction with Li ions, leaving them weakly solvated in the electrolyte. Moreover, negatively charged additives carrying Li ions can be locally concentrated at the surface of the Li metal, enhancing their ability to regulate solvation and improve interfacial mobility, beneficial for the formation of inorganic‐rich SEIs and compact Li deposition. Accordingly, Li||Li symmetric cell demonstrates >500 h stable cycling at 2 mA cm −2 and 2 mA h cm −2, and Li||LiFePO 4 cell shows 97% capacity retention after 400 cycles in 1C. The universality of this design is further demonstrated in various negatively charged suspension electrolyte systems. Such an electrolyte design rationale can shed light on the development of advanced electrolyte systems for realizing high‐energy‐density and long‐duration metal battery systems.

Article Details

Volume / Issue Vol. 37, Issue 40
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (6)

Z

Zhengyu Ju

Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin

T

Tianrui Zheng

Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin

A

Amy C. Marschilok

Institute of Sustainability, Electrification and Energy, Stony Brook University

E

Esther S. Takeuchi

Institute of Sustainability, Electrification and Energy, Stony Brook University

K

Kenneth J. Takeuchi

Institute of Sustainability, Electrification and Energy, Stony Brook University

G

Guihua Yu

Materials Science and Engineering Program and Walker Department of Mechanical Engineering