Issue 9, 2024

Solvation configuration and interfacial chemistry regulation via a bio-based Cyrene additive for highly reversible zinc anodes

Abstract

The unstable anode–electrolyte interface caused by water-induced parasitic reactions and rampant dendrite growth severely hampers the practical deployment of aqueous zinc batteries. Herein, a bio-based Cyrene solvent is used as a dual-function electrolyte additive to improve the reversibility of zinc metal anodes. Theoretical and experimental analyses verify that Cyrene molecules can synergistically modulate the solvation configuration of Zn2+ and the interfacial microenvironment. The water molecules released from the solvation shell of Zn2+ and the regulated ion associations of SO42− restrain water decomposition activity and passivation byproduct formation. Simultaneously, Cyrene molecules are adsorbed preferentially on the surface of the zinc anode, which induces orientation sedimentation of Zn2+ and inhibits the detrimental dendrite growth. Consequently, the symmetric cell with the Cyrene additive provides high plating/stripping reversibility of over 2000 cycles at 5 mA cm−2, and the MnO2-based full cell exhibits improved stability compared to the additive-free counterpart.

Graphical abstract: Solvation configuration and interfacial chemistry regulation via a bio-based Cyrene additive for highly reversible zinc anodes

Supplementary files

Article information

Article type
Paper
Submitted
27 Nov 2023
Accepted
25 Jan 2024
First published
26 Jan 2024

J. Mater. Chem. A, 2024,12, 5439-5450

Solvation configuration and interfacial chemistry regulation via a bio-based Cyrene additive for highly reversible zinc anodes

C. Li, Y. Song, N. Gao, C. Ye, X. Xu, W. Yang and C. Hu, J. Mater. Chem. A, 2024, 12, 5439 DOI: 10.1039/D3TA07315G

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