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September 10, 2025Journal of the American Chemical Society42 citations

Artificial Protrusion Architectures Enabling Horizontal-Diffusion Nucleation for Stable Zinc-Based Batteries

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XZXiao ZhiqiangZLZhexuan LiuXWXinru Wu

Key Points

  • The artificial protrusion strategy significantly reduces dendrite formation, enhancing safety and longevity in zinc-based batteries.
  • A remarkable lifespan of nearly 5000 hours for Zn symmetrical cells was achieved, demonstrating superior performance over existing solutions.
  • Resulting capacities of 480 mAh over 3000 hours and 1.8 Ah in Zn-I2 and Zn-MnO2 pouch cells indicate robust cycle stability.
  • This approach highlights the importance of structural design in addressing metal anode challenges in battery technology.

Abstract

Rechargeable batteries with metal anodes promise superior energy storage; however, dendrite formation poses risks to safety and stability. Conventional methods to inhibit dendrite growth in zinc-based batteries (ZBs) are partially effective and may compromise their performance. Herein, a unique artificial protrusion strategy (APS) is proposed involving the mechanical incorporation of Zn powder particles on the surface of zincophilic metals. This method guides Zn2+ ions to preferentially obtain electrons on the Zn powders and allows nucleation and growth on the more energetically favorable substrate surface, demonstrating a horizontal-diffusion mechanism of Zn nucleation on the anode surface and steering the subsequent nuclei growth to undergo uniform Zn deposition. The resulting dendrite-free Zn anode extends the Zn symmetrical cell lifespan to nearly 5000 h in the coin cell configuration, notably superior to the reported performance. Additionally, the Zn-I2 and Zn-MnO2 pouch cells achieve notable capacities of 480 mAh (3000 h) and 1.8 Ah over multiple cycles, respectively. These results mark a significant advance toward resolving dendrite-related issues through anode structural design, paving the way for future sustainable development.

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Cite This Study

Zhiqiang et al. (2025) studied this question.

synapsesocial.com/papers/68c1cc4054b1d3bfb60f498ehttps://doi.org/10.1021/jacs.5c11951
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