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Updated: Aug 5, 2026

Developing Photosensitizer-Cobaloxime Hybrids for Solar-Driven H2 Production in Aqueous Aerobic Conditions
Published on: October 5, 2019
Synergistic Regulation of Charge Delocalization and Built-In Electric Field in COF-Supported Single-Atom Catalysts
Man Zhang1, Yida Zhang1, Shuang Ma1
1Inner Mongolia Key Laboratory of Green Chemical Engineering, College of Chemical Engineering, Inner Mongolia University of Technology, Hohhot, P. R. China.
Abstract:
Photocatalytic production of H2O2 from O2 is attractive yet often self-limiting because oxygenated intermediates persist on catalyst surfaces triggering O─O bond cleavage and H2O2 decomposition. Herein, we demonstrate that this bottleneck can be mitigated by coordination-microenvironment control coupling an enhanced built-in electric field with regulated charge delocalization. A sulfonated covalent organic framework (TpPa -SO3H-COF) was used as the support, and single Ni atoms were anchored at two distinct sites to form two atomically dispersed catalysts with the same metal species but markedly different local fields and coordination environments. Theoretical calculations and spectroscopic characterizations indicate that N coordination induces electron density redistribution, thereby enabling charge delocalization at the Ni center and further weakening *OOH adsorption. Meanwhile, a strengthened built-in electric field further enhances photogenerated electron-hole separation. As a result, the N-coordinated site (N1─Ni─O2) achieves an enhanced H2O2 production rate of 7189.52 µmol g-1·h-1 under sacrificial-agent-free conditions. This work identifies coordination-driven regulation of the built-in electric field and charge delocalization as an effective strategy for photocatalytic H2O2 synthesis, providing valuable insights for the rational design of efficient photocatalysts.
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