Ligand engineering enables an alkaline iron-chromium redox flow battery

Abstract Iron-chromium redox flow batteries are promising for long-duration energy storage owing to their safety, low cost, and environmental compatibility, but are limited by sluggish chromium(II/III) kinetics and parasitic hydrogen evolution in chromium-based negolytes. Here we re-engineer iron-chromium redox chemistry through chelation-driven molecular design using the strong-field ligand 2,2-Bis(hydroxymethyl)−2,2’,2”-nitrilotriethanol. The ligand reshapes the electronic configurations of iron and chromium centres and tunes their redox potentials, enabling an alkaline iron-chromium redox flow battery with rapid kinetics and suppressed hydrogen evolution. It stabilizes an octahedral hexacoordinate chromium chelate and unlocks an unconventional chromium(III/IV) couple at +0.34 V versus the standard hydrogen electrode, circumventing the Jahn-Teller effects associated with chromium(II/III). Paired with an iron-chelate negolyte based on the same ligand, the cell operates at 1.15 V within the aqueous stability window and remains stable over 500 cycles, achieving 99.0% coulombic efficiency and 75.8% energy efficiency at 100 mA cm −2 (80% of state-of-charge). Together with a projected raw-material cost of $17.02 kWh −1 and theoretical capacity of 68.07 Ah L −1 based on posolyte volume, this work establishes a scalable, cost-effective strategy for grid-scale energy storage.

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Publication Details

Journal
Nature Communications
Published
2026-09-30
DOI
https://doi.org/10.1038/s41467-026-77810-8
Primary Topic
Advanced battery technologies research
Type
article
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article

Ligand engineering enables an alkaline iron-chromium redox flow battery

Jiangjiang Duan, Bin Luo, Xue Long, Zuoxuan Gan et al.
Nature Communications
Advanced battery technologies research
article

Ligand engineering enables an alkaline iron-chromium redox flow battery

Jiangjiang Duan, Bin Luo, Xue Long, Zuoxuan Gan, Pei Liu, Jinhua Guo, Xuan Cai, Huaiyu Ke, Hua Jiang, Yilin Zeng, Yifan Zhang, Shuangbin Zhang, Wendong Yang, Linfeng Wang
article en

Abstract

Abstract Iron-chromium redox flow batteries are promising for long-duration energy storage owing to their safety, low cost, and environmental compatibility, but are limited by sluggish chromium(II/III) kinetics and parasitic hydrogen evolution in chromium-based negolytes. Here we re-engineer iron-chromium redox chemistry through chelation-driven molecular design using the strong-field ligand 2,2-Bis(hydroxymethyl)−2,2’,2”-nitrilotriethanol. The ligand reshapes the electronic configurations of iron and chromium centres and tunes their redox potentials, enabling an alkaline iron-chromium redox flow battery with rapid kinetics and suppressed hydrogen evolution. It stabilizes an octahedral hexacoordinate chromium chelate and unlocks an unconventional chromium(III/IV) couple at +0.34 V versus the standard hydrogen electrode, circumventing the Jahn-Teller effects associated with chromium(II/III). Paired with an iron-chelate negolyte based on the same ligand, the cell operates at 1.15 V within the aqueous stability window and remains stable over 500 cycles, achieving 99.0% coulombic efficiency and 75.8% energy efficiency at 100 mA cm −2 (80% of state-of-charge). Together with a projected raw-material cost of $17.02 kWh −1 and theoretical capacity of 68.07 Ah L −1 based on posolyte volume, this work establishes a scalable, cost-effective strategy for grid-scale energy storage.

Nature Communications
The University of Queensland (AU), Wuhan National Laboratory for Optoelectronics (CN), Huazhong University of Science and Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced battery technologies research
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