Mitigating ion flux vortex enables reversible zinc electrodeposition

Y Yuhang Dai (Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.) W Wenjia Du H Haobo Dong X Xuan Gao (Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.) C Chang Su (School of Materials Science and Engineering, State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, Technology Innovation Center of High Performance Resin Materials (Liaoning Province)) P Partha P. Paul B Bratislav Lukic C Chengyi Zhang (School of Chemical Sciences) C Chumei Ye J Jinghao Li W Wei Zong (Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.) J Jianwei Li (Macao Institute of Materials Science and Engineering (MIMSE), Faculty of Innovation Engineering, Macau University of Science and Technology, Taipa, 999078 Macao, China) Y Yiyang Liu A Alexander Rack L Liqiang Mai P Paul R. Shearing (Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.) G Guanjie He (Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.)

Abstract

Abstract Metal anodes hold considerable promise for high-energy-density batteries but are fundamentally limited by electrochemical irreversibility caused by uneven metal deposition and dendrite formation, which compromise battery lifespan and safety. The chaotic ion flow (or ion flux vortex) near the electrode surface, driving these instabilities, has remained elusive due to limitations in conventional techniques such as scanning electron and atomic force microscopies, which are invasive and incapable of probing internal structures of deposits. Here, we employ in-situ X-ray computed tomography (CT) to non-destructively visualize Zn deposition on LAPONITE-coated Zn anodes, thereby revealing the internal structural evolution and deposition orientation. Combined with computational fluid dynamics simulations, we demonstrate that the LAPONITE coating, with its separated positive and negative charge centers, suppresses ionic vortex formation, guiding uniform, dense, and vertically aligned Zn growth along (100) plane, thereby significantly mitigating dendrite growth. This translates into a 3.17-Ah Zn-MnO2 pouch cell with stable performance over 100 cycles, offering a viable path toward scalable, high-performance metal-anode batteries.

Article Details

Volume / Issue Vol. 16, Issue 1
Published August 08, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

Y

Yuhang Dai

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.

W

Wenjia Du

H

Haobo Dong

X

Xuan Gao

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.

C

Chang Su

School of Materials Science and Engineering, State Key Laboratory of Fine Chemicals, Frontiers Science Center for Smart Materials Oriented Chemical Engineering, Technology Innovation Center of High Performance Resin Materials (Liaoning Province)

P

Partha P. Paul

B

Bratislav Lukic

C

Chengyi Zhang

School of Chemical Sciences

C

Chumei Ye

J

Jinghao Li

W

Wei Zong

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.

J

Jianwei Li

Macao Institute of Materials Science and Engineering (MIMSE), Faculty of Innovation Engineering, Macau University of Science and Technology, Taipa, 999078 Macao, China

Y

Yiyang Liu

A

Alexander Rack

L

Liqiang Mai

P

Paul R. Shearing

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, U.K.

G

Guanjie He

Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.