A new aqueous all-organic flow battery with high cell voltage in acidic electrolytes

Leung, Puiki and Martin, T. and Xu, Q. and Flox, Cristina and Mazuina, Mohamad and Palma, Jesus and Rodchanarowan, Aphichart and Zhu, Xianqing and Xing, Wei W. and Shah, Akeel A. (2021) A new aqueous all-organic flow battery with high cell voltage in acidic electrolytes. Applied Energy, 282 (116058). pp. 1-12. ISSN 0306-2619. (Published)

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Abstract

To ensure deeper market penetration, electrolytes of redox flow batteries (RFB) should be based on low-cost and abundant materials. An all-organic system based on acidic aqueous electrolytes is developed, from a study of theoretical calculations, fundamental chemistry to full-cell testing. The selection of organic active materials in relation to their physical and chemical properties (reaction kinetics, electrode potentials and solubilities) is facilitated by density functional theory (DFT) calculations. Based upon the results, this paper proposes 1,3-cyclohexanedione (1,3-dione) and 1,2-benzoquinone-4,5-disulfonic acid (1,2-BQDS), which are highly soluble and exhibit the most negative (~− 0.2 V vs. Standard Hydrogen Electrode (SHE)) and the most positive (~0.80 V vs. Standard Hydrogen Electrode (SHE)) electrode potentials, respectively, under acidic conditions, for which the formation of short-lived and unstable radicals is avoided. The proposed molecules involve at least two proton–two-electron-transfers (pH ≤ 2.5) and yields one of the highest cell voltage (ca. 0.9 V) and reasonable energy efficiencies (>70% at 20 mA cm− 2 ) in acidic electrolytes reported to date.

Item Type: Article
Additional Information: Indexed by Scopus
Uncontrolled Keywords: Acid aqueous electrolyte; Density functional theory; Full cell; Organic; Redox flow battery
Subjects: Q Science > QD Chemistry
T Technology > TK Electrical engineering. Electronics Nuclear engineering
T Technology > TP Chemical technology
Faculty/Division: Institute of Postgraduate Studies
Faculty of Electrical and Electronic Engineering Technology
Depositing User: Mrs. Nurul Hamira Abd Razak
Date Deposited: 02 Dec 2025 00:38
Last Modified: 02 Dec 2025 00:38
URI: https://umpir.ump.edu.my/id/eprint/46425
Statistic Details: View Download Statistic

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