Spin‐State and Clustering Effects in Fe‐Complex Negolytes for Near‐Neutral Aqueous Redox Flow Batteries

D Donghwi Ko (Department of Chemistry) S Seongyeon Kwon (Center for Catalytic Hydrocarbon Functionalizations) J Jantakan Nedsaengtip (Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) Y Yohan Kim Y Yunseop Choi (Department of Chemistry, Pohang University of Science and Technology (POSTECH) 1 , 77 Cheongam-ro, Pohang, Gyeongsangbuk-do 37673,) D Dongwook Kim (Center for Catalytic Hydrocarbon Functionalizations) X Xingyi Lyu (Department of Chemistry and Biochemistry) R Ruchi Dixit (Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) Y Yugang Zhang T Tao Li J Jongcheol Seo (Department of Chemistry and Division of Advanced Materials Science) M Mu‐Hyun Baik (Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea) H Hye Ryung Byon (Department of Chemistry)

Abstract

Abstract Cost‐effective redox‐active materials are essential for advancing redox flow batteries (RFBs). Iron, with its abundance and suitability as a redox couple, is a promising candidate; however, achieving stable and fast redox reactions in aqueous RFBs remains a challenge. This study presents an Fe‐based negolyte stabilized by a hexadentate ligand, where Fe–ligand bonds are enhanced through intermolecular interactions. The sulfonate‐substituted Fe complex exhibits a formal potential of −0.44 V versus Ag/AgCl and an exceptionally high rate constant of 0.69 cm s −1 . Near‐neutral RFBs incorporating 0.5 M Fe complex show excellent cycling stability, with no discernible capacity fading over 300 cycles. This performance is attributed to intermolecular hydrogen bonds that reinforce Fe–ligand coordination and promote the formation of stable trimeric clusters. Operando electrochemical Raman spectroscopy and density functional theory reveal that π‐backdonation from Fe(II) to the imino‐phenolate moiety further stabilizes the complex after reduction. In contrast, the hydroxyl‐substituted complex exhibits inferior stability due to weaker hydrogen bonding and less pronounced π‐backdonation. These findings underscore the importance of ligand design and intermolecular interactions in developing cost‐effective, high‐performance redox‐active materials for aqueous RFBs.

Article Details

Volume / Issue Vol. 64, Issue 32
Published August 04, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

D

Donghwi Ko

Department of Chemistry

S

Seongyeon Kwon

Center for Catalytic Hydrocarbon Functionalizations

J

Jantakan Nedsaengtip

Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

Y

Yohan Kim

Y

Yunseop Choi

Department of Chemistry, Pohang University of Science and Technology (POSTECH) 1 , 77 Cheongam-ro, Pohang, Gyeongsangbuk-do 37673,

D

Dongwook Kim

Center for Catalytic Hydrocarbon Functionalizations

X

Xingyi Lyu

Department of Chemistry and Biochemistry

R

Ruchi Dixit

Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

Y

Yugang Zhang

T

Tao Li

J

Jongcheol Seo

Department of Chemistry and Division of Advanced Materials Science

M

Mu‐Hyun Baik

Department of Chemistry Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

H

Hye Ryung Byon

Department of Chemistry