Precise Engineering of Cobalt Sites on Strained TiO<sub>2-<i>x</i></sub> Enables Tunable Syngas Production via Photocatalytic CO<sub>2</sub> and Water Conversion.
basic_science · Level V
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- Record sourced from PubMed, PMID 41987596.
- Also identified by DOI 10.1021/acsnano.6c01855.
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Abstract
Photocatalytic CO<sub>2</sub>-to-syngas conversion represents a sustainable approach to addressing global energy and environmental challenges, yet its practical efficiency is often hindered by poorly defined active sites and sluggish reaction kinetics. In this work, we construct well-defined cobalt single-atom (Co<sub>SA</sub>) and cobalt nanoparticle (Co<sub>NP</sub>) sites anchored on strained TiO<sub>2-<i>x</i></sub> through an <i>in situ</i> topological transformation of a bimetallic Co-Ti-ethylene glycolate metal-organic framework (Co-Ti-EG BMOF) precursor. The Co<sub>SA</sub> sites exhibit highly selective reduction of CO<sub>2</sub> to CO, achieving a production rate of 329.0 μmol g<sup>-1</sup> over 5 h, whereas the Co<sub>NP</sub> sites predominantly facilitate the hydrogen evolution reaction, yielding 123.7 μmol g<sup>-1</sup> of H<sub>2</sub> without the use of sacrificial reagents. Owing to the distinct site-specific functionalities and enhanced charge separation imparted by the strained TiO<sub>2-<i>x</i></sub> matrix, the catalyst enables precise tuning of syngas composition, with CO:H<sub>2</sub> ratios adjustable from 0.08 to 6.78. Furthermore, the incorporation of an organic solvent improves the reactant solubility, thereby significantly enhancing both product yields and syngas selectivity. This study presents a rational design strategy for multifunctional photocatalytic systems aimed at controllable and efficient CO<sub>2</sub> valorization.