Competitive Solvation‐Driven Interface Stabilization for Protic Deep Eutectic Solid Electrolyte in Sodium‐Metal Batteries

X Xinke Dai (College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China) S Shuilai Qiu (College of Safety and Ocean Engineering China University of Petroleum Beijing China) M Mingshuai Wu (College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China) S Songyang Zhang J Jian‐an Chen (College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China) L Long Zhang Z Zhenghao Li (Institute of New Energy Materials and Engineering, College of Materials Science and Engineering, State Key Laboratory of Green and Efficient Development of Phosphorus Resources, Fujian Engineering Research Center of High Energy Batteries and New Energy Equipment & Systems) Z Zhen Shang (Beijing Key Lab of Fine Ceramics Institute of Nuclear and New Energy Technology Tsinghua University Beijing China) G Guoyong Huang J Jiujun Zhang (Institute of New Energy Materials and Engineering, College of Materials Science and Engineering, State Key Laboratory of Green and Efficient Development of Phosphorus Resources, Fujian Engineering Research Center of High Energy Batteries and New Energy Equipment & Systems) Y Yun Zheng

Abstract

ABSTRACT Solid‐state sodium batteries (SSSBs) are promising for safe and high‐energy storage, while their development is hindered by the low ionic conductivity of solid electrolytes and severe interfacial side reactions, especially when protic deep eutectic electrolytes (DEEs) are employed to enhance conductivity. The active hydrogen in typical DEEs (e.g., N‐methylacetamide, NMA) readily reacts with the sodium metal negative electrode, leading to rapid performance decay. Herein, we propose a solvation reconstruction strategy to address this issue by incorporating polar carbonate ester into a composite solid electrolyte (CSE) based on NaTFSI‐NMA DEE. Carbonate ester molecules preferentially enter the solvation structure of Na + , replacing NMA from the primary solvation sheath layer, thereby inhibiting its interfacial by‐reaction with the Na negative electrode. The optimized electrolyte (PNDC) exhibits a high ionic conductivity of 2.82 mS·cm −1 , a Na + transference number of 0.77, a low activation energy of 0.12 eV, and a wide electrochemical window of 4.8 V. The assembled sodium metal cell can operate stably for 2500 cycles at 5 C. Moreover, it demonstrates excellent safety performance. This work presents a rational solvation engineering approach to overcome the interfacial challenges of protic DEEs, offering a safe and high‐performance electrolyte for fast‐charging SSSBs.

Article Details

Volume / Issue Vol. 38, Issue 42
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

X

Xinke Dai

College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China

S

Shuilai Qiu

College of Safety and Ocean Engineering China University of Petroleum Beijing China

M

Mingshuai Wu

College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China

S

Songyang Zhang

J

Jian‐an Chen

College of New Energy and Materials State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing China

L

Long Zhang

Z

Zhenghao Li

Institute of New Energy Materials and Engineering, College of Materials Science and Engineering, State Key Laboratory of Green and Efficient Development of Phosphorus Resources, Fujian Engineering Research Center of High Energy Batteries and New Energy Equipment & Systems

Z

Zhen Shang

Beijing Key Lab of Fine Ceramics Institute of Nuclear and New Energy Technology Tsinghua University Beijing China

G

Guoyong Huang

J

Jiujun Zhang

Institute of New Energy Materials and Engineering, College of Materials Science and Engineering, State Key Laboratory of Green and Efficient Development of Phosphorus Resources, Fujian Engineering Research Center of High Energy Batteries and New Energy Equipment & Systems

Y

Yun Zheng