Interfacial reconstruction toward a C60–Zn–Bi sandwich architecture for ultra-stable zinc anodes

Severe dendrite growth and interfacial instability hinder the practical application of aqueous zinc metal anodes. Herein, we develop a self-reconstructed Fullerene–Zinc–Bismuth (C 60 –Zn–Bi) sandwich architecture to regulate Zn deposition and stabilize the electrode/electrolyte interface. A zincophilic Bi interlayer is first formed on Zn foil via an immersion reaction, providing uniform nucleation sites and inducing preferential Zn (002) deposition. Subsequently, a conformal C 60 overlayer is introduced to modulate interfacial charge distribution, reduce local electric-field concentration and suppress water-induced side reactions. During cycling, Zn preferentially deposits between the Bi interlayer and C 60 overlayer, forming a confined C 60 –Zn–Bi structure that limits outward Zn growth and reduces direct electrolyte exposure. Benefiting from this dual interfacial regulation , symmetric Zn cells operate stably for over 4000 h at 5 mA cm −2 and 3000 h at 10 mA cm −2 , maintaining more than 1000 h even at 25 mA cm −2 . Zn||I 2 full cells deliver over 10,000 cycles at 3 A g −1 , demonstrating enhanced rate durability and interfacial stability.

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Publication Details

Journal
Journal of Power Sources
Published
2026-10-06
DOI
https://doi.org/10.1016/j.jpowsour.2026.241646
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
0.00

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article

Interfacial reconstruction toward a C60–Zn–Bi sandwich architecture for ultra-stable zinc anodes

Yue Zhou, Hongbing Lu, Zhongjiu Yang, Grace Curran et al.
Journal of Power Sources
Advanced battery technologies research
article

Interfacial reconstruction toward a C60–Zn–Bi sandwich architecture for ultra-stable zinc anodes

Yue Zhou, Hongbing Lu, Zhongjiu Yang, Grace Curran, Tousif Jamee, Yufei Jia, Yuhe Mu, Gustavo Felicio Perruci, Sophie Cho
article en

Abstract

Severe dendrite growth and interfacial instability hinder the practical application of aqueous zinc metal anodes. Herein, we develop a self-reconstructed Fullerene–Zinc–Bismuth (C 60 –Zn–Bi) sandwich architecture to regulate Zn deposition and stabilize the electrode/electrolyte interface. A zincophilic Bi interlayer is first formed on Zn foil via an immersion reaction, providing uniform nucleation sites and inducing preferential Zn (002) deposition. Subsequently, a conformal C 60 overlayer is introduced to modulate interfacial charge distribution, reduce local electric-field concentration and suppress water-induced side reactions. During cycling, Zn preferentially deposits between the Bi interlayer and C 60 overlayer, forming a confined C 60 –Zn–Bi structure that limits outward Zn growth and reduces direct electrolyte exposure. Benefiting from this dual interfacial regulation , symmetric Zn cells operate stably for over 4000 h at 5 mA cm −2 and 3000 h at 10 mA cm −2 , maintaining more than 1000 h even at 25 mA cm −2 . Zn||I 2 full cells deliver over 10,000 cycles at 3 A g −1 , demonstrating enhanced rate durability and interfacial stability.

Journal of Power SourcesVol. 697
The University of Texas at Dallas (US)
National Science Foundation, Division of Electrical, Communications and Cyber Systems
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced battery technologies research
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Interfacial reconstruction toward a C60–Zn–Bi sandwich architecture for ultra-stable zinc anodes — Yue Zhou, Hongbing Lu, et al. · Journal of Power Sources (2026) | TGRS Research Map | TGRS