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  5. Towards High‐Energy‐Density Pseudocapacitive Flowable Electrodes by the Incorporation of Hydroquinone

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Article
en
2015

Towards High‐Energy‐Density Pseudocapacitive Flowable Electrodes by the Incorporation of Hydroquinone

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en
2015
Vol 8 (5)
Vol. 8
DOI: 10.1002/cssc.201402985

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Yury Gogotsi
Yury Gogotsi

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Muhammad Boota
Kelsey B. Hatzell
Emin C. Kumbur
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Abstract

This study reports an investigation of hydroquinone (HQ) as a multielectron organic redox molecule to enhance the performance of flowable electrodes. Two different methods to produce high-performance pseudocapacitive flowable electrodes were investigated for electrochemical flow capacitors. First, HQ molecules were deposited on carbon spheres (CSs) by a self-assembly approach using various HQ loadings. In the second approach, HQ was used as a redox-mediating agent in the electrolyte. Flowable electrodes composed of HQ showed a capacitance of 342 F g(-1), which is >200 % higher than that of flowable electrodes based on nontreated CSs (160 F g(-1)), and outperformed (in gravimetric performance) many reported film electrodes. A similar trend in capacitance was observed if HQ was used as a redox agent in the electrolyte; however, its poor cycle life restricted further consideration. In addition, a twofold increase in capacitance was observed under flow conditions compared to that of previous studies.

How to cite this publication

Muhammad Boota, Kelsey B. Hatzell, Emin C. Kumbur, Yury Gogotsi (2015). Towards High‐Energy‐Density Pseudocapacitive Flowable Electrodes by the Incorporation of Hydroquinone. , 8(5), DOI: https://doi.org/10.1002/cssc.201402985.

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Publication Details

Type

Article

Year

2015

Authors

4

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1002/cssc.201402985

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