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Updated: Oct 1, 2026

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
Solvation-interface coupling directs Zn(002)-oriented deposition for highly reversible zinc batteries
Bingcheng Ge1, Yanqing Zhang1, Yan Chen1
1Henan Engineering Research Center of Design and Recycle for Advanced Electrochemical Energy Storage Materials, School of Materials Science and Engineering, Henan Normal University, Xinxiang 453007, Henan, PR China.
Abstract:
Aqueous zinc batteries are promising candidates for large-scale energy storage owing to their intrinsic safety and low cost, yet their practical deployment remains hindered by parasitic interfacial reactions, unstable Zn deposition, and dendrite growth. Herein, we report a molecular-mediated elecAtrolyte strategy employing propionamide (PA) to stabilize Zn metal anodes through solvation-interface coupling regulation. PA partially replaces coordinated H2O molecules in the Zn2+ solvation sheath and simultaneously reorganizes the hydrogen-bond network, thereby reducing H2O activity and mitigating water-induced parasitic reactions. Meanwhile, PA exhibits a strong affinity toward Zn surfaces, forming a stable adsorption environment that modulates interfacial reaction kinetics. Theory calculations reveal preferential adsorption of PA on Zn facets, which promotes thermodynamically favored Zn(002)-oriented growth. Consequently, Zn deposition evolves into dense and smooth layers with a highly textured crystallographic orientation and effectively suppressed dendrite formation. Owing to this solvation-interface coupled regulation, Zn||Zn symmetric cells achieve stable cycling for over 3800 h at 1 mA cm-2 and 1 mAh cm-2, while Zn||VO2 full cells maintain highly reversible operation for more than 10,000 cycles. This work establishes solvation-interface coupling regulation as an effective electrolyte-design principle for directing Zn crystallization and stabilizing aqueous zinc batteries.
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