Hydroxyl/Amino-Co-Functionalized Carbon Dots Regulate Zn Deposition Texture for Stable Aqueous Zinc Metal Anodes

Abstract Hydroxyl/amino-functionalized carbon dots (OH/NH2-CDs) are introduced as nanoscopic electrolyte additives to regulate Zn deposition texture in aqueous zinc metal batteries. Spectroscopic characterization and simplified calculations suggest interactions between Zn species and the O/N-containing CD surface, together with altered sulfate-associated ion pairing. Compared with OH-CDs, NH2-CDs, and physically mixed OH + NH2-CDs, OH/NH2-CDs exhibit the lowest Zn nucleation overpotential of 45 mV and a distinct Zn(002)/(101) texture distribution. These changes are accompanied by compact Zn deposition, stable Zn||Zn cycling for 1400 h, improved Zn||Cu reversibility, and enhanced Zn||MnO2 full-cell cycling. This work highlights surface-functionalized CDs as texture-regulating nanoadditives for aqueous zinc metal anodes.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-09-21
DOI
https://doi.org/10.1021/acsanm.6c02815
Primary Topic
Advanced battery technologies research
Type
article
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article

Hydroxyl/Amino-Co-Functionalized Carbon Dots Regulate Zn Deposition Texture for Stable Aqueous Zinc Metal Anodes

Yuanbin Wen, Chen Qing, Fan Yang, Yihui Song et al.
ACS Applied Nano Materials
Advanced battery technologies research
article

Hydroxyl/Amino-Co-Functionalized Carbon Dots Regulate Zn Deposition Texture for Stable Aqueous Zinc Metal Anodes

Yuanbin Wen, Chen Qing, Fan Yang, Yihui Song, Bo Yang, Yitao Yang
article en

Abstract

Abstract Hydroxyl/amino-functionalized carbon dots (OH/NH2-CDs) are introduced as nanoscopic electrolyte additives to regulate Zn deposition texture in aqueous zinc metal batteries. Spectroscopic characterization and simplified calculations suggest interactions between Zn species and the O/N-containing CD surface, together with altered sulfate-associated ion pairing. Compared with OH-CDs, NH2-CDs, and physically mixed OH + NH2-CDs, OH/NH2-CDs exhibit the lowest Zn nucleation overpotential of 45 mV and a distinct Zn(002)/(101) texture distribution. These changes are accompanied by compact Zn deposition, stable Zn||Zn cycling for 1400 h, improved Zn||Cu reversibility, and enhanced Zn||MnO2 full-cell cycling. This work highlights surface-functionalized CDs as texture-regulating nanoadditives for aqueous zinc metal anodes.

ACS Applied Nano Materials
Openalex Percentile: Top 20%
Advanced battery technologies research
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