Elimination of Concentration Polarization Under Ultra‐High Current Density Zinc Deposition by Nanofluid Self‐Driven Ion Enrichment

N Na Gao M Manying Cui (School of Chemistry Engineering Research Center of Energy Storage Materials and Devices Ministry of Education School of Future Technology Xi'an Jiaotong University Xi'an 710049 P. R. China) K Kai Xi (Xi’an Key Laboratory of Sustainable Energy Materials Chemistry, Department of Applied Chemistry, School of Chemistry) T Teng Deng (School of Earth Sciences, East China University of Technology) D Dandan Yin J Jingjie He X Xiaofeng Cui L Limin Liu (National Synchrotron Radiation Laboratory) W Weiping Li (Beijing National Laboratory for Condensed Matter Physics) S Shujiang Ding (Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, School of Chemistry) G Guoxin Gao (School of Chemistry Engineering Research Center of Energy Storage Materials and Devices Ministry of Education Xi'an Jiaotong University Xi'an 710049 P. R. China) H Hongyang Zhao (Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, School of Chemistry)

Abstract

Abstract The commercialization of zinc metal batteries aims at high‐rate capability and lightweight, which requires zinc anodes working at high current density, high areal capacity, and high depth of discharge. However, frequent zinc anode fades drastically under extreme conditions. Herein, it is revealed that the primary reason for the anode instability is the severe concentration polarization caused by the imbalanced consumption rate and transfer rate of Zn 2+ under extreme conditions. Based on this finding, a nanofluid layer is constructed to rapidly absorb Zn 2+ and mitigate the polarization induced by the nonlinear transport of interfacial ions. The modified zinc anode sustains at extreme conditions for over 1573 h (40 mA cm −2 , 40 mAh cm −2 , DOD = 75.97%) and 490 h (100 mA cm −2 , 100 mAh cm −2 , DOD = 90.91%), and achieving an unprecedented cumulative capacity of 62.92 Ah cm −2 . This work offers both fundamental and practical insights for the interface design in energy storage devices.

Article Details

Volume / Issue Vol. 37, Issue 15
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

N

Na Gao

M

Manying Cui

School of Chemistry Engineering Research Center of Energy Storage Materials and Devices Ministry of Education School of Future Technology Xi'an Jiaotong University Xi'an 710049 P. R. China

K

Kai Xi

Xi’an Key Laboratory of Sustainable Energy Materials Chemistry, Department of Applied Chemistry, School of Chemistry

T

Teng Deng

School of Earth Sciences, East China University of Technology

D

Dandan Yin

J

Jingjie He

X

Xiaofeng Cui

L

Limin Liu

National Synchrotron Radiation Laboratory

W

Weiping Li

Beijing National Laboratory for Condensed Matter Physics

S

Shujiang Ding

Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, School of Chemistry

G

Guoxin Gao

School of Chemistry Engineering Research Center of Energy Storage Materials and Devices Ministry of Education Xi'an Jiaotong University Xi'an 710049 P. R. China

H

Hongyang Zhao

Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, School of Chemistry