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Updated: Jul 12, 2026

Developing Photosensitizer-Cobaloxime Hybrids for Solar-Driven H2 Production in Aqueous Aerobic Conditions
Published on: October 5, 2019
Axially coordinated cobalt single-atom membrane enabling electron-transfer-singlet oxygen synergy for highly
Ting Liu1, Zuoming Fan1, Mingrui He1
1State Key Laboratory of Urban-rural Water Resource and Environment, Harbin Institute of Technology, Harbin 150090, China.
Abstract:
The presence of natural organic matter and inorganic anions often impedes the effectiveness of advanced oxidation processes in removing micropollutants from aquatic environments. Considering that most micropollutants contain electron-rich functional groups, selective degradation through non-radical pathways offers a promising strategy to eliminate target contaminants. In this study, a carbon-based cobalt single-atom catalytic membrane was fabricated via a low-temperature, controlled synthesis to suppress carbon substrate pyrolysis and avoid the formation of diverse catalytic active sites, facilitating a completely non-radical activation route with Co active sites. The synergistic action of singlet oxygen and the electron transfer process enables efficient pollutant degradation while reducing oligomer accumulation. In addition, short-range electron transfer enhances oxidant utilization efficiency. Density functional theory calculations reveal that peroxymonosulfate activation predominantly proceeds through an electron-transfer pathway. Moreover, axial coordination engineering increases the overlap between O 2p and Co 3d orbitals, thereby accelerating interfacial free electron transfer. Coupled with membrane pore confinement-enhanced mass transport, the selective single-atom catalytic system enables the targeted generation and in situ utilization of reactive oxygen species, addressing a long-standing challenge in heterogeneous Fenton-like reactions. As a result, the catalytic membrane exhibits exceptional reactive oxygen species utilization efficiency and highly selective pollutant removal. The membrane achieved over 98% removal of electron-rich contaminants during 4000 min of continuous operation under ultralow driving pressure. Even in complex water matrices, the removal efficiency remained above 95%, demonstrating remarkable robustness and practical applicability.
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