Coupling Zn<sup>2+</sup> Ferrying Effect With Anion–π Interaction to Mitigate Space Charge Layer Enables Ultra‐High Utilization Rate Zn Anode

Z Zhaoyu Zhang (Interdisciplinary Materials Research Center, School of Materials Science and Engineering) X Xiaojia Lan (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China) G Guoli Liao (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China) W Wencheng Du (School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China) Y Yufei Zhang (Department of Chemistry, Natural Sciences Complex, University at Buffalo, The State University of New York, Buffalo, NY, USA.) M Minghui Ye (School of Chemical Engineering and Light Industry) Z Zhipeng Wen (School of Chemical Engineering and Light Industry) Y Yongchao Tang (School of Chemical Engineering and Light Industry) X Xiaoqing Liu (School of Chemical Engineering and Light Industry) C Cheng Chao Li (School of Chemical Engineering and Light Industry)

Abstract

AbstractA major dilemma faced by Zn anodes at a high zinc utilization rate (ZUR) is the insufficient supply of ionic carriers that initiate the space charge layer (SCL) subject to the rampant growth of Zn dendrites. Herein, an “anion–cation co‐regulation” strategy, associated with a fundamental principle for screening potential electrolyte additives coupling the Zn2+ ferrying effect with anion‐retention capability, is put forward to construct dendrite‐free, high‐ZUR Zn anode. Taking ninhydrin‐modified ZnSO4 system as a proof‐of‐concept, the multiple zincophilic polar groups of ninhydrin facilitate the transport of Zn2+ ions, while its electron‐deficient aromatic ring retains SO42− counterions via anion–π interaction, constructing an ion‐rich interface that minimizes the SCL‐driven Zn deterioration. Consequently, the Zn anode can endure ∼240 h continuous cycling at an ultrahigh ZUR of 87.3%. The superiority brought by ninhydrin is further reflected by the ultralong cycling durability of Zn‐I2 batteries (over 100 000 cycles). Even at an ultralow N/P ratio of 1.1 (∼90.6% ZUR), the battery with a capacity of ∼5.27 mAh cm−2 can still sustain for 350 cycles, which has been hardly achieved in aqueous Zn batteries. Furthermore, the effectiveness of this strategy is fully validated by a series of additives sharing similar fundamentals.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Z

Zhaoyu Zhang

Interdisciplinary Materials Research Center, School of Materials Science and Engineering

X

Xiaojia Lan

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China

G

Guoli Liao

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou 510006 China

W

Wencheng Du

School of Chemical Engineering and Light Industry Guangdong University of Technology Guangzhou P. R. China

Y

Yufei Zhang

Department of Chemistry, Natural Sciences Complex, University at Buffalo, The State University of New York, Buffalo, NY, USA.

M

Minghui Ye

School of Chemical Engineering and Light Industry

Z

Zhipeng Wen

School of Chemical Engineering and Light Industry

Y

Yongchao Tang

School of Chemical Engineering and Light Industry

X

Xiaoqing Liu

School of Chemical Engineering and Light Industry

C

Cheng Chao Li

School of Chemical Engineering and Light Industry