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April 13, 2026Small1 citations

Vitamin C‐Derived Oxygen‐Functionalized Carbon Dots as a Novel Modulator for Regulating Zn 2+ Deposition and Stabilizing Aqueous Zinc‐Ion Batteries

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RTRen TianWXWengang XuDDD. Deng

Key Points

  • To investigate the role of vitamin C-derived carbon dots in enhancing zinc deposition and stability in aqueous zinc-ion batteries.
  • Utilization of vitamin C-derived, oxygen functionalized carbon dots as a modulator in aqueous electrolytes
  • Assessment of zinc deposition uniformity on zinc electrodes
  • Evaluation of electrochemical performance metrics including cycling lifespan and capacity
  • 15% increase in full-cell capacity at a current density of 1 A g − 1
  • 2000 hours of stable cycling lifespan in Zn||Zn symmetric cells
  • 99% Coulombic efficiency achieved over 2000 cycles in Zn||Cu asymmetric cells
  • 80% retention of initial capacity after 2000 cycles at 4 A g − 1 in Zn||VO 2 full cells

Abstract

ABSTRACT Aqueous zinc‐ion batteries (AZIBs) are promising alternatives to lithium‐ion batteries due to the natural abundance of zinc and inherent safety, but dendrite growth on Zn anode and parasitic side reactions impair their lifespan and large‐scale applications. Herein, we introduce vitamin C‐derived, oxygen functionalized carbon dots (VC‐CDs) as a novel modulator to aqueous electrolyte. Negatively charged VC‐CDs preferentially adsorb on Zn anode, homogenizing electric fields and enabling uniform Zn 2 + deposition, and their coordination with Zn 2 + promotes ion migration, boosting full‐cell capacity by 15% at 1 A g − 1 . Accordingly, the Zn||Zn symmetric cells deliver a long‐term stable cycling lifespan of 2000 h, whereas the Zn||Cu asymmetric cells attain an exceptional Coulombic efficiency of 99% across 2000 cycles. Furthermore, the Zn||VO 2 full cells exhibit remarkable cycling stability, retaining 80% of their initial capacity after 2000 cycles at a current density of 4 A g − 1 . Notably, the practical feasibility of VC‐CDs is further corroborated in both Zn||VO 2 and Zn||I 2 pouch cells, which highlights their great potential for advancing next‐generation aqueous zinc‐ion battery technologies.

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Cite This Study

Tian et al. (2026) studied this question.

synapsesocial.com/papers/69dc88d83afacbeac03ea975https://doi.org/10.1002/smll.73375
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