Multi-functional amino acid enabling global ion regulation for high-performance aqueous Zn–I2 batteries

C Cailin Zhong (Siyuan Laboratory, Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Department of Physics, College of Physics & Optoelectronic Engineering, Jinan University 1 , Guangdong 510632,) Y Yuxuan Liang J Jinliang Li M Meijia Qiu (Siyuan Laboratory, Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Department of Physics, College of Physics & Optoelectronic Engineering Jinan University Guangdong 510632 P.R. China) L Le Chen W Wenjie Mai (Siyuan Laboratory, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Department of Physics, College of Physics & Optoelectronic Engineering Jinan University Guangzhou China) W Wentao Zhang P Peng Sun (State Key Laboratory of NBC Protection for Civilian)

Abstract

Aqueous Zn–I2 batteries (AZIBs) possess great potential in future energy storage systems while facing severe restriction by the unstable Zn anode and uncontrollable shuttling of polyiodides during cycling. Herein, we propose a multi-functional amino acid, proline (Pro), in the traditional aqueous electrolyte to regulate the overall ion behaviors in both bulk electrolyte and electrode interfaces, thereby enhancing the comprehensive performance of the AZIBs. This amino acid with strong polarity can disrupt the hydrogen bonds among water networks and impair the electrostatic coupling of Zn2+–SO42−. Besides, it can simultaneously regulate the interfacial ion behaviors on both the Zn anode and I2 cathode, thus inhibiting various side reactions and the polyiodide shuttle effect, respectively. As a result, the stability and lifetimes of ZnǁZn symmetric batteries and ZnǁCu asymmetric batteries are significantly improved. Meanwhile, in practical ZnǁI2 full cells, the introduction of Pro can extend the lifetime from 68 to 150 cycles at a high I2 loading of 13 mg cm−2 and improve the capacity retention from 38.6% to 64.0% after 6800 cycles at a common I2 loading of 1.6 mg cm−2. This demonstrates the significant potential of this multi-functional additive in the future development of practical AZIBs.

Article Details

Volume / Issue Vol. 127, Issue 6
Published August 11, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

C

Cailin Zhong

Siyuan Laboratory, Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Department of Physics, College of Physics & Optoelectronic Engineering, Jinan University 1 , Guangdong 510632,

Y

Yuxuan Liang

J

Jinliang Li

M

Meijia Qiu

Siyuan Laboratory, Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Department of Physics, College of Physics & Optoelectronic Engineering Jinan University Guangdong 510632 P.R. China

L

Le Chen

W

Wenjie Mai

Siyuan Laboratory, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Department of Physics, College of Physics & Optoelectronic Engineering Jinan University Guangzhou China

W

Wentao Zhang

P

Peng Sun

State Key Laboratory of NBC Protection for Civilian