Molecularly Engineered Circular Additive with Multisite Desolvation for High‐Performance Zinc Ion Battery

J Jinliang Yan (Institute of Carbon Neurtrality Zhejiang Wanli University Ningbo 315100 China) H Haozhen Dou (Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) M Mengke Su (Institute of Carbon Neurtrality Zhejiang Wanli University Ningbo 315100 China) M Mi Xu (Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) S Sitong Liu (Computational Biology Department, School of Computer Science) S Siqi Qin B Beinuo Zhang (Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China) K Kai Zong (Institute of Carbon Neutrality Zhejiang Wanli University Ningbo 315100 China) L Lichao Tan (Institute of Carbon Neutrality) X Xin Wang Z Zhongwei Chen (Power Battery & Systems Research Center, State Key Laboratory of Catalysis)

Abstract

Abstract Additive engineering can effectively relieve interface issues of aqueous zinc ion batteries (AZIBs), but most additives induce the sluggish interface kinetics and boosted polarization, especially at high current density and low temperature. Herein, the relationship between additive molecular structure and desolvation behavior is built by utilizing a series of circular and linear sugar molecules as prototypes, which systematically reveals molecular size, steric configuration, and electronic structure as design criteria for additives to achieve fast desolvation. As indicated by theoretical simulations and experiments, circular fructose (FRU) molecule with small size, quasi‐planar adsorption configuration, and enhanced electron delocalization enables the compact electric double layer (EDL) with shorter Zn 2+ diffusion path and lower activation energy via multisite desolvation, thus obtaining the rapid interface kinetics and facilitating highly reversible zinc anode over a wide temperature range. Zn//Zn cell exhibits long cycle life exceeding 9500 h, and Zn//NVO cell maintains 83.92% high‐capacity retention after 2480 cycles under 6.95 µL mg −1 lean electrolyte and 11.94 mg cm −2 high loading.

Article Details

Volume / Issue Vol. 64, Issue 32
Published August 04, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

J

Jinliang Yan

Institute of Carbon Neurtrality Zhejiang Wanli University Ningbo 315100 China

H

Haozhen Dou

Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

M

Mengke Su

Institute of Carbon Neurtrality Zhejiang Wanli University Ningbo 315100 China

M

Mi Xu

Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

S

Sitong Liu

Computational Biology Department, School of Computer Science

S

Siqi Qin

B

Beinuo Zhang

Power Battery and Systems Research Center State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 China

K

Kai Zong

Institute of Carbon Neutrality Zhejiang Wanli University Ningbo 315100 China

L

Lichao Tan

Institute of Carbon Neutrality

X

Xin Wang

Z

Zhongwei Chen

Power Battery & Systems Research Center, State Key Laboratory of Catalysis