Issue 27, 2023

Cellulose-complexing strategy induced surface regulation towards ultrahigh utilization rate of Zn

Abstract

Electrolyte design provides a fundamental solution to address the irreversibility and instability of metallic Zn anodes for the fast-developing zinc-ion batteries, considering the increasing issue of their sustainability. Herein, a cellulose-complexing approach was developed for a ZnCl2-based eutectic electrolyte to reconstruct Zn2+ coordination, tune water activity and regulate the solid–electrolyte interface (SEI). In the case of deficient water, the oxygen atoms from the glucose unit were revealed to coordinate directly with Zn2+, resulting in the participation of cellulose in the solvation shell of Zn2+, with a change in the hydrogen-bond network, where water transformed into the bulk state. The reshaped Zn2+ coordination with sluggish water activity led to a widened electrochemical window and promising ion transport in the complex electrolyte. Endowed with a dissolution–regeneration induced in situ SEI with inorganic–organic characteristics, dendrite-free Zn stripping/plating were achieved at a high current density of 50 mA cm−2 and 50 mA h cm−2 for 2000 h, with a high depth-of-discharge of 85%. The complex electrolyte was demonstrated to be beneficial for the long-term cycling stability of the activated carbon/Zn cell compared to its ZnCl2 eutectic electrolyte counterpart. Further, an artificial SEI was fabricated via electrochemical deposition using the electrolyte, possessing the merits of organic-dominant characteristics. The developed approach provides a facile route to prepare novel zinc electrolytes towards a high utilization rate of Zn.

Graphical abstract: Cellulose-complexing strategy induced surface regulation towards ultrahigh utilization rate of Zn

  • This article is part of the themed collection: #MyFirstJMCA

Supplementary files

Article information

Article type
Paper
Submitted
08 Apr 2023
Accepted
07 Jun 2023
First published
07 Jun 2023

J. Mater. Chem. A, 2023,11, 14720-14727

Cellulose-complexing strategy induced surface regulation towards ultrahigh utilization rate of Zn

X. Li, H. Yao, Y. Li, X. Liu, D. Yuan, Y. Chen, M. W. Wong, Y. Zhang and H. Zhang, J. Mater. Chem. A, 2023, 11, 14720 DOI: 10.1039/D3TA02117C

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