Regulating Solvation Chemistry via Strongly Coordinating Anion and Weakly Solvating Cosolvent for Low‐Temperature Sodium Metal Batteries

G Genliang Yu (Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China) Q Qian Yang T Tongtong Huo M Mingyue Li X Xuejie Bai X Xiaobo Zhang (State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering) J Jie Xu T Ting Lv (Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China) X Xunzhu Zhou (Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology) L Lin Li K Kaixiang Lei (Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China) S Shijian Zheng (Key Laboratory of Materials Laminating Fabrication and Interface Control Technology of Tianjin, School of Materials Science and Engineering)

Abstract

ABSTRACT Sodium metal batteries (SMBs) hold great promise for next‐generation energy storage systems due to their abundant sodium resources, high theoretical specific capacity, and low redox potential. However, they suffer from rapid capacity degradation at low operating temperatures, which inevitably hinders their practical application. In this work, we employ a strongly coordinating anion and a weakly solvating cosolvent to fabricate anion‐rich and varied solvation structures, aiming to enhance the low‐temperature electrochemical performance of SMBs. This unique solvation configuration efficiently reduces the Na + desolvation energy barrier, alleviates concentration polarization, accelerates liquid‐phase ion transport, and facilitates the in‐situ formation of a stable, highly ion‐conductive electrode‐electrolyte interphase. Benefiting from the synergistic regulation of interfacial stability and ion transport kinetics, dendrite‐free sodium deposition is achieved at −20°C, enabling stable cycling for over 500 h at 0.5 mA cm −2 and 0.5 mAh cm −2 . Additionally, the assembled SMBs exhibit excellent rate performance and cycling stability, delivering a high capacity retention of 70.54% and 68.28% after 1000 cycles at −20°C and −40°C, respectively. This work provides a novel perspective for the rational design of advanced electrolytes for high‐performance low‐temperature SMBs and lays a solid foundation for their practical application in cold environments.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 08, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

G

Genliang Yu

Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China

Q

Qian Yang

T

Tongtong Huo

M

Mingyue Li

X

Xuejie Bai

X

Xiaobo Zhang

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering

J

Jie Xu

T

Ting Lv

Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China

X

Xunzhu Zhou

Zhejiang Provincial Key Laboratory of Advanced Battery Materials and Technology

L

Lin Li

K

Kaixiang Lei

Tianjin Key Laboratory of Materials Laminating Fabrication and Interface Control Technology School of Materials Science and Engineering Hebei University of Technology Tianjin China

S

Shijian Zheng

Key Laboratory of Materials Laminating Fabrication and Interface Control Technology of Tianjin, School of Materials Science and Engineering