Volume 11, Issue 1 2201046
Research Article

Highly Stable Asymmetric Viologen as an Anolyte for Aqueous Organic and Halide-Based Redox Flow Batteries

Bebin Ambrose

Bebin Ambrose

Electro Organic and Materials Electrochemistry Division, CSIR-Central Electrochemical Research Institute, Karaikudi, Tamil Nadu, 630003 India

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002 India

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Raghupandiyan Naresh

Raghupandiyan Naresh

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002 India

Electrochemical Power Sources Division, CSIR-Central Electrochemical Research Institute, Karaikudi, Tamil Nadu, 630003 India

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Murugavel Kathiresan

Murugavel Kathiresan

Electro Organic and Materials Electrochemistry Division, CSIR-Central Electrochemical Research Institute, Karaikudi, Tamil Nadu, 630003 India

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002 India

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Mani Ulaganathan

Mani Ulaganathan

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002 India

Electrochemical Power Sources Division, CSIR-Central Electrochemical Research Institute, Karaikudi, Tamil Nadu, 630003 India

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Pitchai Ragupathy

Corresponding Author

Pitchai Ragupathy

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002 India

Electrochemical Power Sources Division, CSIR-Central Electrochemical Research Institute, Karaikudi, Tamil Nadu, 630003 India

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First published: 10 November 2022
Citations: 3

Abstract

In redox flow batteries (RFBs), energy density mainly depends on the volume and concentration of active species in electrolyte. However, the poor solubility of organic molecules limits the further development of aqueous organic redox flow batteries (AORFBs). Herein, the viologen core structure is modified with asymmetric functional groups such as propyl and triethyl ammonium propyl for enhancing the solubility up to 1.82 m in aqueous medium. Further, the modified viologen structure lowers the redox potential (−0.58 V vs Ag/AgCl) and significantly reduces radical dimerization. Interestingly, synthesized [1-propyl-1’-(3-triethylammonio)propyl-4,4’-bipyridinium tribromide] (PV3+) coupled with bromide/bromine (2Br/Br2) redox species shows cell voltage (1.66 V). The tested PV3+/PV2+||2Br/Br2 RFB having Nafion-117 membrane exhibits a round-trip efficiency of 99% over 100 cycles. The self-discharge behavior of PV3+/PV2+•||2Br/Br2 RFB system retains 85% of the cell voltage over 20 h, indicating the lowest permeability of bromine in RFB. Thus, the present approach of viologen modification with asymmetric functionalities drastically improves the RFB performance in terms of energy density and cycle life of the system.

Conflict of Interest

The authors declare no conflict of interest.

Data Availability Statement

The data that support the findings of this study are available from the corresponding author upon reasonable request.

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