Toward highly reversible aqueous zinc-ion batteries: nanoscale-regulated zinc nucleation via graphene quantum dots functionalized with multiple functional groupsopen access
- Authors
- Han, Weiwei; Lee, Hankyu; Liu, Yuzhen; Kim, Youjoong; Chu, Huaqiang; Liu, Guicheng; Yang, Woochul
- Issue Date
- Jan-2023
- Publisher
- Elsevier B.V.
- Keywords
- Aqueous Zn-ion batteries; Functionalized graphene quantum dots; Electrochemical induction; Nucleation; Dendrite-free
- Citation
- Chemical Engineering Journal, v.452, pp 1 - 8
- Pages
- 8
- Indexed
- SCIE
SCOPUS
- Journal Title
- Chemical Engineering Journal
- Volume
- 452
- Start Page
- 1
- End Page
- 8
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/21343
- DOI
- 10.1016/j.cej.2022.139090
- ISSN
- 1385-8947
1873-3212
- Abstract
- Rechargeable aqueous Zn-ion batteries have a promising application potential and represent competitive candidates in the field of large-scale energy storage. However, Zn metal is prone to uncontrolled dendrite formation, hydrogen evolution, and corrosion, all of which limit the reversibility of the corresponding batteries. Herein, a novel kind of nanosized and functionalized graphene quantum dots (F-GQDs) is decorated on a Zn anode via in situ electrochemical induction. These quantum dots (similar to 5 nm) can regulate Zn plating/stripping at the nanoscale. Furthermore, the high electronegativity of polar functional groups (-OH, -COOH, -NH2, and -SCN) on the GQDs results in strong Zn2+ affinity and the F-GQDs endow the Zn anode with high hydrophilicity, low nucleation energy barrier, and an evenly distributed electrical field. As a result, the F-GQDs-decorated Zn anode achieves superior Zn plating/stripping for greater than 450 h at 10 mA cm(-2) and 5 mAh cm(-2), with a low voltage hysteresis of 81 mV. Moreover, when coupled with MnO2 cathodes, the F-GQDs-decorated Zn enables the fabrication of Zn parallel to MnO2 full batteries with significantly enhanced rate capability and long-term cycling performance (capacity retention of 78.6 % at 1 A/g after 500 cycles).
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- Appears in
Collections - College of Natural Science > Division of Physics & Semiconductor Science > 1. Journal Articles
- College of Natural Science > Department of Physics > 1. Journal Articles

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