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Updated: Jan 30, 2026

CO2 Photoreduction to CH4 Performance Under Concentrating Solar Light
Published on: June 12, 2019
Engineering the Local Electronic Microenvironment via Interfacial Chelation for Efficient CO2 Photoreduction Toward
Wenke Gui1, Hailong Cheng1, Hui Wang1
1State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai, China.
None:
The photocatalytic conversion of CO2 into hydrocarbons using sustainable solar energy offers a promising strategy to address the global energy crisis and achieve carbon neutrality. However, conventional p-block photocatalysts are often limited by inefficient electron transfer, which restricts the reaction to a two-electron reduction pathway, primarily yielding CO and impeding the formation of high-value hydrocarbons like CH4. Herein, we construct a novel BiOCl-BiO(HCOO) heterostructure (denoted as BiOCH), which features interfacial chelating interactions between the [Bi2O2]2 + and [HCOO]- layers within the BiO(HCOO) component, for efficient photocatalytic CO2 reduction to CH4. This unique heterostructure broadens the light absorption spectrum and facilitates the separation of photoinduced charges. More importantly, the interfacial Bi─O chelation in BiO(HCOO) modulates the local electronic microenvironment of Bi sites. Mechanistic studies reveal that this modulation enhances the coupling between the C-2p orbital of the *CHO intermediate and the Bi-p orbital, thereby lowering the Gibbs free energy barrier for the critical *CO-to-*CHO step and promoting CH4 generation. Consequently, the optimized BiOCH catalyst achieves a remarkable CH4 production rate of 42.95 µmol·g- 1·h- 1 with a high electron selectivity of 95.38%. This work provides a novel design strategy of organic-inorganic hybrid layered structures for steering photocatalytic CO2 reduction toward value-added hydrocarbons.
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