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research article

A colloidal aqueous electrolyte modulated by oleic acid for durable zinc metal anode

Wang, Meiling
•
Wu, Xiaoyu
•
Yang, Di
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January 1, 2023
Chemical Engineering Journal

Continuous dendrites growth, as well as corrosion and side reactions of Zn metal anode seriously hinder the development of aqueous zinc ion batteries. To address these issues, oleic acid (OA) is dispersed into a 2 M ZnSO4 solution to form a novel colloidal Zn-ion electrolyte. The non-soluble OA surfactant doesn't coordinate with Zn2+ and the water solvent. Instead, it works as a 'temporary electrolyte additive'' during initial stage of battery processing. After, the OA additive is bonded to Zn metal forming an OA adsorption layer on the anode surface. This hydrophobic OA adsorption layer can not only regulate Zn deposition with parallel orientation of the Zn (0 0 2) plane to the Zn foil substrate leading to a flat Zn metal anode, but also isolate direct contact of water with Zn thus inhibiting the harmful side reactions on the Zn anode. Consequently, this colloidal electrolyte enables highly reversible Zn deposition with Coulombic efficiency of 99.63 % and cycle life over 3340 cycles. This strategy of in-situ facet engineering and interface modification of Zn metal anode using colloidal electrolyte presents a new perspective toward design of high-performance aqueous zinc ion batteries.

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Type
research article
DOI
10.1016/j.cej.2022.138589
Web of Science ID

WOS:000850859400002

Author(s)
Wang, Meiling
Wu, Xiaoyu
Yang, Di
Zhao, Hainan
He, Li
Su, Jiaran
Zhang, Xu
Yin, Xiuxiu
Zhao, Kangning  
Wang, Yizhan
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Date Issued

2023-01-01

Publisher

ELSEVIER SCIENCE SA

Published in
Chemical Engineering Journal
Volume

451

Article Number

138589

Subjects

Engineering, Environmental

•

Engineering, Chemical

•

Engineering

•

aqueous zinc ion battery

•

zinc metal anode

•

dendrite

•

electrolyte additive

•

oleic acid

•

molecular-dynamics

•

long-life

•

kinetics

•

battery

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LAS  
Available on Infoscience
January 16, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/193814
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