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Restructuring of a Diamagnetic Diiron-Sulfur Complex to Paramagnetic Ferredoxin-Inspired [Fe4S4] Porous Organic Polymer Stimulates Optimally Coordinated Sites for Oxygen Evolution Catalysis.

Created on 04 Sep 2026

Authors

Chandan Biswas, Tao Zheng, Manodip Pal, Subhajit Nandy, Roumi Patra, Bishal Boro, Subhajit Chakraborty, Sebastian C Peter, Qing-Xiao Tong, Arnab Dutta, Jing-Xin Jian, John Mondal

Published in

Small (Weinheim an der Bergstrasse, Germany). Pages e75628. Sep 03, 2026. Epub Sep 03, 2026.

Abstract

Inspired by the electron-transfer function of biological ferredoxins, we report a biomimetic iron-sulfur cluster-functionalized porous organic polymer (FeS-POP) for efficient oxygen evolution reaction (OER). FeS-POP is constructed through polymerization-induced restructuring of a diamagnetic diiron carbonyl precursor (FeS-Com), wherein Fe─Fe bond cleavage and decarbonylation trigger a diamagnetic-to-paramagnetic transformation, generating atomically dispersed cubane [Fe4S4] active centers within a conjugated porous framework. FeS-POP exhibits excellent OER activity in alkaline media, delivering 10 mA cm-2 at an overpotential of 390 mV with a Tafel slope of 68 mV dec-1, ∼89% Faradaic efficiency, and remarkable durability, positioning it among the leading polymer-based OER electrocatalysts reported thus far. Importantly, synchrotron Fe K-edge XAFS establishes a cubane [Fe4S4(OH)4] motif as the catalytically active center and reveals its structural resilience throughout prolonged electrolysis, thereby elucidating the atomic-level structure-activity relationship governing OER. Complementary DFT calculations reveal the thermodynamic driving force for cluster reconstruction and show that cooperative multi-metallic interactions within the [Fe4S4] core facilitate O-O bond formation through a low-barrier redox-isomerization pathway. Our findings principally shed light on the molecular mechanism underlying this remarkable diamagnetic-to-paramagnetic transformation, establishing a synthetic blueprint for engineering biomimetic iron-sulfur active sites in porous electrocatalysts.

PMID:
42693610
Bibliographic data and abstract were imported from PubMed on 04 Sep 2026.

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