Micellar Solubilization for High‐Energy‐Density Aqueous Organic Redox Flow Batteries

Author:

Kim Youngsu1,Kwon Giyun1,Park Sung‐O1,Kim Heechan2,Kim Jihyeon1,Kim Kyoungoh1,Yoo Jaekyun1,Lee Donghwan2,Kang Kisuk134ORCID

Affiliation:

1. Department of Materials Science and Engineering Research Institute of Advanced Materials (RIAM) Seoul National University 1 Gwanak‐ro, Gwanak‐gu Seoul 08826 Republic of Korea

2. Department of Chemistry Seoul National University 1 Gwanak‐ro, Gwanak‐gu Seoul 08826 Republic of Korea

3. Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul National University 1 Gwanak‐ro, Gwanak‐gu Seoul 08826 Republic of Korea

4. School of Chemical and Bioengineering Institute of Engineering Research College of Engineering Seoul National University 1 Gwanak‐ro, Gwanak‐gu Seoul 151‐742 Republic of Korea

Abstract

AbstractHigh solubility of active materials is crucial for achieving a high‐energy‐density catholyte/anolyte in redox flow batteries. However, solubility largely depends on the compatibility with electrolyte, limiting the types of redox‐active materials that can be used in aqueous electrolytes. Herein, a universal strategy is introduced to attain a high solubility of active materials regardless of the compatibility with aqueous electrolytes while preserving their intrinsic redox activity via micellar solubilization. Leveraging the amphiphilic nature of surfactant molecules, insoluble redox‐active materials are encapsulated by surfactants to be dissolvable with significant solubility. As a demonstration, it is showed that an order‐of‐magnitude solubility enhancement can be achieved for (2,2,6,6‐tetramethylpiperidin‐1‐yl)oxyl (TEMPO) in aqueous catholyte (≈0.8 m). Consequently, the catholyte performance of TEMPO is fully harnessed, leading to an energy density enhancement of more than ten times compared to that in bare electrolyte. It is also observed that micellar solubilization unexpectedly improves the cycle stability, attributed to the mitigation of intermolecular side reactions and reduced crossover. Finally, the fundamental electrochemical reaction mechanism of micelle‐encapsulated TEMPO is discussed. This strategy offers a new insight regarding the solubility and stability of the catholyte/anolyte, and is expected to be applicable to other redox‐active molecules, opening up an unexplored micellar chemistry in redox flow batteries.

Funder

Ministry of Science, ICT and Future Planning

National Research Foundation of Korea

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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