Flexible Asymmetric Supercapacitor Assembled by Dahlia-Like Core-Shell Cobalt/Tin-Based Chalcogenide@Nickel Hydroxide Grown on Reduced Graphene Oxide

Abstract

Tin-based chalcogenides are vastly supposed to be one of the most prospective electrode materials under their unique characteristics like facile synthesis, low-cost, and eco-friendliness. Nevertheless, the tin-based chalcogenides have low intrinsic conductivity, severe volume effect and electrochemical driven hysteresis, as applied directly to the materials used as supercapacitor electrodes, impeding additional advancements in their electrochemical properties. Therefore, tin-based chalcogenides, especially stannous sulfide, are less reported in the field of supercapacitors. To alleviate these problems, a dahlia-like stannous sulfide-based composite (rCSCTN) has been achieved by in situ growing dahlia-like core-shell cobalt/tin-based chalcogenide@nickel hydroxide on graphene layers. The synthesis strategy can effectively enhance the electrochemical reaction kinetics of the material for electrodes while also improve the supercapacitor properties of the electrode materials by means of the mechanisms of energy storage active site intervention, multi-component synergistic effect. Furthermore, the PVA/KOH gel-electrolyte has created a malleable and highly tensile rCSCTN/PVA/KOH film electrode that can curve at a variety of angles. The constructed supercapacitor apparatus can operate a multipurpose display for more than 12 mins in real-world applications. As a result, this innovative study provides fresh motivation for creating composite electrodes for flexible asymmetric supercapacitors that are based on tin-based chalcogenides.

Supplementary files

Article information

Article type
Paper
Submitted
22 mar 2024
Accepted
02 sen 2024
First published
05 sen 2024

J. Mater. Chem. A, 2024, Accepted Manuscript

Flexible Asymmetric Supercapacitor Assembled by Dahlia-Like Core-Shell Cobalt/Tin-Based Chalcogenide@Nickel Hydroxide Grown on Reduced Graphene Oxide

H. Sun, H. Zong, W. Huang, L. Duan, J. Dong, Y. Sun, Z. Lu, Z. Yang, Y. Liu and J. Liu, J. Mater. Chem. A, 2024, Accepted Manuscript , DOI: 10.1039/D4TA01936A

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