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Electrospun composite nanofibre supercapacitors enhanced with electrochemically 3D printed current collectors

Chen, Xiaolong; Liu, Xinhua; Ouyang, Mengzheng; Childs, Peter; Brandon, Nigel; Wu, Billy

Authors

Dr XIAOLONG CHEN XIAOLONG.CHEN@NOTTINGHAM.AC.UK
Assistant Professor in Sustainable Engineering

Xinhua Liu

Mengzheng Ouyang

Peter Childs

Nigel Brandon

Billy Wu



Abstract

Carbonised electrospun nanofibres are attractive for supercapacitors due to their relatively high surface area, facile production routes and flexibility. With the addition of materials such as manganese oxide (MnO), the specific capacitance of the carbon nanofibres can be further improved through fast surface redox reactions, however this can reduce the electrical conductivity. In this work, electrochemical 3D printing is used as a novel means of improving electrical conductivity and the current collector-electrode interfacial resistance through the deposition of highly controlled layers of copper. Neat carbonised electrospun electrodes made with a 30 wt% manganese acetylacetonate (MnACAC) and polyacrylonitrile precursor solution have a hydrophobic nature preventing an even copper deposition. However, with an ethanol treatment, the nanofibre films can be made hydrophilic which enhances the copper deposition morphology to enable the formation of a percolating conductive network through the electrode. This has the impact of increasing electrode electronic conductivity by 360% from 10 S/m to 46 S/m and increasing specific capacitance 110% from 99 F/g to 208 F/g at 5 mV/s through increased utilisation of the pseudocapacitive active material. This novel approach thus provides a new route for performance enhancement of electrochemical devices using 3D printing, which opens new design possibilities.

Citation

Chen, X., Liu, X., Ouyang, M., Childs, P., Brandon, N., & Wu, B. (2019). Electrospun composite nanofibre supercapacitors enhanced with electrochemically 3D printed current collectors. Journal of Energy Storage, 26, Article 100993. https://doi.org/10.1016/j.est.2019.100993

Journal Article Type Article
Acceptance Date Sep 30, 2019
Online Publication Date Oct 26, 2019
Publication Date Dec 1, 2019
Deposit Date Aug 3, 2023
Journal Journal of Energy Storage
Electronic ISSN 2352-152X
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 26
Article Number 100993
DOI https://doi.org/10.1016/j.est.2019.100993
Public URL https://nottingham-repository.worktribe.com/output/23786833
Publisher URL https://www.sciencedirect.com/science/article/pii/S2352152X19302841