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Updated: Jan 10, 2026

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
Ca2+/Zn2+ alginate hydrogel electrolyte for high-performance zinc-ion batteries
Qiaoyu Ma1, Chengcheng Yin1, Zhongyang Wang1
1Materials Center for Energy and Photoelectrochemical Conversion, School of Material Science and Engineering, University of Jinan, Jinan, 250022, China. yangshuhua78@163.com.
Abstract:
The growing energy crisis has intensified the focus on green energy, sparking widespread interest in aqueous zinc-ion batteries. However, their development has been hindered by issues in the zinc anode. Here, Ca2+/Zn2+ alginate hydrogel electrolyte was designed to effectively suppress dendritic growth and parasitic side reactions. The Ca2+ primary cross-linking provides a regular "egg-box" network framework for fast ion transport, whereas secondary cross-linking with Zn2+ creates a denser, interpenetrating network with calcium, thereby enhancing the hydrogel's mechanical strength. Furthermore, the abundant -OH and -COO- groups on the alginate chains formed hydrogen bonds with H2O, which reduced water activity. Meanwhile, the abundant -OH and -COOH groups on the alginate chains formed hydrogen bonds/coordination with H2O/Zn2+, reducing the activity of H2O and strengthening the ion confinement effect. Therefore, the Zn/SCZ/Zn symmetric cell achieved stable cycling for over 900 hours at 2 mA cm-2 and 2 mAh cm-2, while the Zn/SCZ/MnO2 battery retained 62.03% of its capacity after 700 cycles. This Ca2+/Zn2+ dual-ion crosslinking strategy for the alginate hydrogel electrolyte offers a novel approach to address the limitations of conventional aqueous electrolytes.
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