Science Advances · 2017 · 203 citations · 49 references
Solar-driven photocatalytic conversion of CO<sub>2</sub> into fuels has attracted a lot of interest; however, developing active catalysts that can selectively convert CO<sub>2</sub> to fuels with desirable reaction products remains a grand challenge. For instance, complete suppression of the competing H<sub>2</sub> evolution during photocatalytic CO<sub>2</sub>-to-CO conversion has not been achieved before. We design and synthesize a spongy nickel-organic heterogeneous photocatalyst via a photochemical route. The catalyst has a crystalline network architecture with a high concentration of defects. It is highly active in converting CO<sub>2</sub> to CO, with a production rate of ~1.6 × 10<sup>4</sup> μmol hour<sup>-1</sup> g<sup>-1</sup>. No measurable H<sub>2</sub> is generated during the reaction, leading to nearly 100% selective CO production over H<sub>2</sub> evolution. When the spongy Ni-organic catalyst is enriched with Rh or Ag nanocrystals, the controlled photocatalytic CO<sub>2</sub> reduction reactions generate formic acid and acetic acid. Achieving such a spongy nickel-organic photocatalyst is a critical step toward practical production of high-value multicarbon fuels using solar energy.
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The Chemistry and Applications of Metal-Organic Frameworks
Hiroyasu Furukawa, Kyle E. Cordova, M. O’Keeffe et al. · Science · 2013 · 15.9K citations
Materials Science, Inorganic Chemistry, Organic Material Chemistry +13