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Laser-assisted preparation of vertically aligned reduced graphene oxide/tannic acid arrays for flexible aqueous zinc-ion hybrid capacitors.

Authors :
Chen, Yan
Xiao, Lijuan
Li, Yuqi
Qiu, Jianhui
Zang, Limin
Yang, Chao
Source :
Applied Surface Science. Aug2024, Vol. 665, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

[Display omitted] • Vertically aligned reduced graphene oxide arrays are obtained via laser assistance. • The redox-active tannic acid is introduced which plays multiple roles in this work. • This unique design provides abundant adsorption sites and transfer channels. • The multiple charge storage mechanisms of V-rGO/TA/LGP cathode are investigated. • The optimized cathode shows good electrochemical performance for Zn2+ ion storage. Aqueous zinc-ion hybrid capacitors (AZHCs) are considered an encouraging energy storage candidate owing to their promising environmental benignity and electrochemical performance. To give full play to the advantages of AZHCs, vertically aligned reduced graphene oxide/tannic acid (V-rGO/TA) arrays are constructed on the laser-pretreated graphite paper (LGP) as flexible carbon-based cathodes (V-rGO/TA/LGP) for AZHCs by a facile laser reduction method. The vertical structure of rGO exhibits abundant physical adsorption sites and ion/electron transfer channels, and the residual oxygen-containing groups of rGO provide favored chemical adsorption sites, which can enhance Zn2+ ion storage. In addition, the TA molecules contribute extra capacity by reversible redox reaction (phenol-quinone transition), further improving the electrochemical performance of the electrode. Consequently, the assembled quasi-solid-state AZHC based on the optimized V-rGO/TA/LGP cathode possesses a high specific capacity of 136.6 µAh cm−2 and a maximum energy density of 109.3 μWh cm−2. In addition, the device exhibits good flexibility with a capacity retention of 97.0 % even after 3000 bending cycles. This design strategy opens up a new approach to construct a vertically aligned carbon material for achieving high-performance flexible AZHCs and realizing their practical applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
665
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
177605220
Full Text :
https://doi.org/10.1016/j.apsusc.2024.160230