Remolding the Interface Stability for Practical Aqueous Zn/I <sub>2</sub> Batteries via Sulfonic Acid‐Rich Electrolyte and Separator Design

R Rui Wang Y Yangyang Liu (State Key Laboratory for Mechanical Behavior of Materials, School of Instrument Science and Technology) Q Qiquan Luo (Department of Chemistry, Anhui University, 111 Jiulong Road, Hefei 230601, P. R. China) P Peng Xiong X Xuedong Xie (School of Materials Science and Engineering Institutes of Physical Science and Information Technology Leibniz International Joint Research Center of Materials Sciences of Anhui Province Anhui University Hefei 230601 China) K Kuan Zhou (School of Materials Science and Engineering Institutes of Physical Science and Information Technology Leibniz International Joint Research Center of Materials Sciences of Anhui Province Anhui University Hefei 230601 China) W Wenjuan Zhang L Lin Zhang H Hong Jin Fan (School of Physical and Mathematical Sciences) C Chaofeng Zhang (Institutes of Physical Science and Information Technology, School of Materials Science and Engineering, Leibniz International Joint Research Centre of Materials Sciences of Anhui Province)

Abstract

Abstract The electrolyte‐electrode interface plays a crucial role in aqueous Zn/I 2 battery and is largely determined by the properties of electrolyte and separator. Here, the synergistic effect of sulfonic acid‐rich electrolyte additive and separator impacts the interface stability of Zn/I 2 batteries is comprehensively investigated using operando synchrotron‐based Fourier‐transform infrared spectroscopy, cryo‐electron microscopy, and in situ spectroscopy. As a case study, a cost‐effective additive known as lignosulfonic acid sodium (LAS) and a flexible sulfonated polyether sulfone membrane are employed to facilitate the formation of a stable solid electrolyte interface (SEI) on the Zn anode and effectively suppress the shuttle effect. The chemisorption of LAS on Zn, its interaction with Zn 2+ , and the impact on the Zn desolvation process are systematically investigated through both theoretical simulations and operando measurements. Furthermore, the formation of an in situ SEI consisting of ZnS and ZnF 2 is identified, which facilitates the uniform nucleation and planar plating of Zn(002), while effectively suppressing detrimental side reactions. Additionally, visualization experiments and in situ spectroscopy confirm that R−SO 3 − groups effectively impede the shuttle process of I 3− /I 5− anions through electrostatic repulsion. This work provides valuable insights for designing robust electrolyte interfaces for high‐performance aqueous Zn/I 2 batteries.

Article Details

Volume / Issue Vol. 37, Issue 16
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

R

Rui Wang

Y

Yangyang Liu

State Key Laboratory for Mechanical Behavior of Materials, School of Instrument Science and Technology

Q

Qiquan Luo

Department of Chemistry, Anhui University, 111 Jiulong Road, Hefei 230601, P. R. China

P

Peng Xiong

X

Xuedong Xie

School of Materials Science and Engineering Institutes of Physical Science and Information Technology Leibniz International Joint Research Center of Materials Sciences of Anhui Province Anhui University Hefei 230601 China

K

Kuan Zhou

School of Materials Science and Engineering Institutes of Physical Science and Information Technology Leibniz International Joint Research Center of Materials Sciences of Anhui Province Anhui University Hefei 230601 China

W

Wenjuan Zhang

L

Lin Zhang

H

Hong Jin Fan

School of Physical and Mathematical Sciences

C

Chaofeng Zhang

Institutes of Physical Science and Information Technology, School of Materials Science and Engineering, Leibniz International Joint Research Centre of Materials Sciences of Anhui Province