Achieving Almost 100% Selectivity in Photocatalytic CO<sub>2</sub> Reduction to Methane via In-Situ Atmosphere Regulation Strategy.
basic_science · Level V
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- Record sourced from PubMed, PMID 39003622.
- Also identified by DOI 10.1002/adma.202405825.
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Abstract
Artificial photosynthesis, harnessing solar energy to convert CO<sub>2</sub> into hydrocarbons, presents a promising solution for climate change and energy scarcity. However, photocatalytic CO<sub>2</sub> reduction often terminates at the CO stage due to limited electron transfer capacity, hindering the formation of higher-energy hydrocarbons such as CH<sub>4</sub>. This study introduces, for the first time, an in-situ atmosphere regulation strategy, refined from molecular imprinting methodologies, using dynamically reacting molecules to precisely engineer photocatalytic surface sites for selective *CO adsorption and hydrogenation in CO<sub>2</sub>-to-CH<sub>4</sub> conversion. Specifically, the single-atom Cu catalyst (Cu-SA-CO) is prepared by anchoring single-atom Cu onto defective TiO<sub>2</sub> substrates (Cu-SA-CO) under a CO reduction atmosphere. Under illumination, the catalyst exhibited outstanding CH<sub>4</sub> selectivity (almost 100%) and productivity (58.5 µmol g<sup>-1</sup> h<sup>-1</sup>). Mechanistic investigations reveal that the coordination environment of the Cu single atoms is significantly affected by dynamically reacting molecules (CO and *CH<sub>x</sub>O) during synthesis, leading to a Ti-Cu-O structure. The structure, with the synergistic interaction between Cu single atoms and oxygen defects, significantly enhances *CO adsorption and hydrogenation, thereby promoting the formation of methane. This work pioneers the use of dynamically reactive molecules as imprinted templates to tune photocatalytic CO<sub>2</sub> reduction selectivity, providing a novel avenue for designing efficient photocatalysts.