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Updated: Sep 8, 2025

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
Functional Layer with Electron-Rich Domain and Hierarchical Ion Channel toward Stable Zinc Anode
Xianhong Chen1, Ziyang Zhong2, Zikang Li1
1Department of Applied Biology & Chemical Technology and Research Institute for Smart Energy, The Hong Kong Polytechnic University, Hong Kong 999077, P.R. China.
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Aqueous zinc batteries represent a promising solution for energy storage applications, owing to their inherent safety and cost-effectiveness. However, challenges such as corrosion, hydrogen evolution, dendrite formation, and poor reversibility remain. To address these issues, this study presents a series of 2D porphyrin polymers featuring electron-rich domains and hierarchical ion channels as a protective layer for stabilizing zinc anodes. The hierarchical ion channels, characterized by a pore size of 3.7 nm, facilitate rapid ion transport and guide uniform Zn2+ deposition. The active porphyrin units, with electron-rich domains, could promote rapid Zn2+ deposition through enhanced Zn2+ adsorption, while also provide anticorrosion properties through the protective layer, thereby ensuring long-term cycle stability. As a result, the NiTPP@Zn symmetrical batteries demonstrate stable cycling performance for over 1700 h at 5 mA cm-2. Furthermore, the soft pack batteries exhibit sustained cycles with high specific capacity, highlighting the potential of NiTPP in enhancing the performance of aqueous zinc batteries for energy storage applications.
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