Bidentate Coordination Structure Facilitates High‐Voltage and High‐Utilization Aqueous Zn−I2 Batteries

Author:

Wang Mingming1,Meng Yahan1,Sajid Muhammad1,Xie Zehui1,Tong Peiyan1,Ma Zhentao2,Zhang Kai1,Shen Dongyang1,Luo Ruihao1,Song Li1,Wu Lihui2,Zheng Xusheng2,Li Xiangyang3,Chen Wei1ORCID

Affiliation:

1. Department of Applied Chemistry, School of Chemistry and Materials Science, Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China Hefei, Anhui 230026 China

2. National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei, Anhui 230029 China

3. Key Laboratory of Materials Physics, Institute of Solid State Physics, Hefei Institutes of Physical Science (HFIPS) Chinese Academy of Sciences Hefei, Anhui 230031 China

Abstract

AbstractThe aqueous zinc‐iodine battery is a promising energy storage device, but the conventional two‐electron reaction potential and energy density of the iodine cathode are far from meeting practical application requirements. Given that iodine is rich in redox reactions, activating the high‐valence iodine cathode reaction has become a promising research direction for developing high‐voltage zinc‐iodine batteries. In this work, by designing a multifunctional electrolyte additive trimethylamine hydrochloride (TAH), a stable high‐valence iodine cathode in four‐electron‐transfer I/I2/I+ reactions with a high theoretical specific capacity is achieved through a unique amine group, Cl bidentate coordination structure of (TA)ICl. Characterization techniques such as synchrotron radiation, in situ Raman spectra, and DFT calculations are used to verify the mechanism of the stable bidentate structure. This electrolyte additive stabilizes the zinc anode by promoting the desolvation process and shielding mechanism, enabling the zinc anode to cycle steadily at a maximum areal capacity of 57 mAh cm−2 with 97 % zinc utilization rate. Finally, the four‐electron‐transfer aqueous Zn−I2 full cell achieves 5000 stable cycles at an N/P ratio of 2.5. The unique bidentate coordination structure contributes to the further development of high‐valence and high capacity aqueous zinc‐iodine batteries.

Funder

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Publisher

Wiley

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