Interface Engineering via In-Situ Constructed Zincophilic Gradient Interphases for High-Performance Zinc-Ion Batteries under Wide Temperature Ranges

Abstract

With the steadily rising demand for energy storage devices, there is an increasing need for high-performance batteries. Although aqueous zinc-ion batteries (AZIBs) are cost-effective and environmentally friendly, they still encounter challenges including dendrites growth, hydrogen evolution and performance degradation under extreme conditions. Here, a novel hydrated eutectic electrolyte (HEE) including ethylene glycol (EG), SnCl 2 solution and hydrated zinc salt (Zn(ClO 4 ) 2 •6H 2 O) successfully prolongs the service life of AZIBs at a range of extreme temperatures. Inspired by the advantageous properties of SnCl 2 , this compound was utilized to generate a solid electrolyte interphase layer in situ on the zinc anode. By preventing direct contact between water and the zinc surface, this procedure creates a protective "shielding effect" that reduces the unchecked growth of zinc dendrites over time. Notably, SnCl 2 significantly enhances the cycle stability of the battery. As a result, the Zn||Zn symmetric cells deliver an extra-long cycling performance for 6320 h and a wide temperature tolerance (-30 ~ 70 ˚C).Moreover, this work examines the relationship between interfacial chemistry at the electrodeelectrolyte interface and the characteristics of liquid eutectic networks. By fine-tuning interfacial chemistry, our findings provide a strategic pathway for optimizing the performance of AZIBs under extreme temperature conditions.

Supplementary files

Article information

Article type
Paper
Submitted
29 Jul 2025
Accepted
30 Sep 2025
First published
01 Oct 2025

Green Chem., 2025, Accepted Manuscript

Interface Engineering via In-Situ Constructed Zincophilic Gradient Interphases for High-Performance Zinc-Ion Batteries under Wide Temperature Ranges

Y. Bi, S. Tian, Y. Yu, Y. Zhang, L. Sun, J. Li, W. Liu, K. Li and G. Huang, Green Chem., 2025, Accepted Manuscript , DOI: 10.1039/D5GC03908H

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