Enzyme-mimicking peripheral substituents beyond the second coordination sphere tune single-atom catalysts for periodate activation

Abstract Single-atom catalysts (SACs) are promising enzyme-mimetic active centers, yet mimicking long-range regulation by distal binding pockets in natural metalloenzymes remains challenging. Here, we synthesize conjugated organic SACs bearing tunable peripheral substituents beyond the second coordination sphere (denoted as R-FeSAC; R = F, H, or NH 2 ) to regulate periodate (PI) activation. F-FeSAC outperforms its H- and NH 2 -substituted counterparts because long-range electronic regulation reconfigures the Fe-site microenvironment and strengthens PI adsorption and activation. In situ Raman spectroscopy, galvanic oxidation assays, and electrochemical analyses show that R-FeSAC activates PI to form high-potential metastable intermediates, enabling a direct electron-transfer pathway (ETP) for selective pollutant removal through polymerization, rather than radical or singlet-oxygen pathways. Fluorine substitution reinforces Fe–O interaction with PI and accelerates electron-transfer kinetics through an electron-withdrawing effect. Consistent relationships among pollutant half-wave potentials ( φ 1/2 ), LUMO (catalyst/PI) –HOMO (pollutant) energy gaps, and degradation reactivity further support the ETP and indicate that pollutant electron-donating ability governs selectivity. Moreover, an F-functionalized membrane exhibits enhanced durability during continuous-flow operation, while a pilot-scale ETP reactor achieves efficient pollutant degradation in real wastewater without iodate leakage. These findings establish beyond-second-sphere peripheral functionalization as an enzyme-inspired strategy for PI activation and polymerization-mediated water purification.

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Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-77805-5
Primary Topic
Metal-Catalyzed Oxygenation Mechanisms
Type
article
Field-Weighted Citation Impact
0.00

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article

Enzyme-mimicking peripheral substituents beyond the second coordination sphere tune single-atom catalysts for periodate activation

Shuang Song, Yaqi Cai, Xiaofeng Tang, Bo Lai et al.
Nature Communications
Metal-Catalyzed Oxygenation Mechanisms
article

Enzyme-mimicking peripheral substituents beyond the second coordination sphere tune single-atom catalysts for periodate activation

Shuang Song, Yaqi Cai, Xiaofeng Tang, Bo Lai, Sijia Jin, Zhiqiao He, Shuang Song, Haiyan Zhang
article en

Abstract

Abstract Single-atom catalysts (SACs) are promising enzyme-mimetic active centers, yet mimicking long-range regulation by distal binding pockets in natural metalloenzymes remains challenging. Here, we synthesize conjugated organic SACs bearing tunable peripheral substituents beyond the second coordination sphere (denoted as R-FeSAC; R = F, H, or NH 2 ) to regulate periodate (PI) activation. F-FeSAC outperforms its H- and NH 2 -substituted counterparts because long-range electronic regulation reconfigures the Fe-site microenvironment and strengthens PI adsorption and activation. In situ Raman spectroscopy, galvanic oxidation assays, and electrochemical analyses show that R-FeSAC activates PI to form high-potential metastable intermediates, enabling a direct electron-transfer pathway (ETP) for selective pollutant removal through polymerization, rather than radical or singlet-oxygen pathways. Fluorine substitution reinforces Fe–O interaction with PI and accelerates electron-transfer kinetics through an electron-withdrawing effect. Consistent relationships among pollutant half-wave potentials ( φ 1/2 ), LUMO (catalyst/PI) –HOMO (pollutant) energy gaps, and degradation reactivity further support the ETP and indicate that pollutant electron-donating ability governs selectivity. Moreover, an F-functionalized membrane exhibits enhanced durability during continuous-flow operation, while a pilot-scale ETP reactor achieves efficient pollutant degradation in real wastewater without iodate leakage. These findings establish beyond-second-sphere peripheral functionalization as an enzyme-inspired strategy for PI activation and polymerization-mediated water purification.

Nature Communications
Chinese Academy of Sciences (CN), Sichuan University (CN), Research Center for Eco-Environmental Sciences (CN), State Key Laboratory of Hydraulics and Mountain River Engineering, Zhejiang University of Technology (CN)
National Natural Science Foundation of China, Zhejiang University, Zhejiang University of Technology, Natural Science Foundation of Zhejiang Province
Clean water and sanitation
Openalex Percentile: Top 26%
Metal-Catalyzed Oxygenation Mechanisms
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