Publication | Closed Access
Reductive Transformation of Layered‐Double‐Hydroxide Nanosheets to Fe‐Based Heterostructures for Efficient Visible‐Light Photocatalytic Hydrogenation of CO
121
Citations
29
References
2018
Year
Conversion of syngas (CO, H<sub>2</sub> ) to hydrocarbons, commonly known as the Fischer-Tropsch (FT) synthesis, represents a fundamental pillar in today's chemical industry and is typically carried out under technically demanding conditions (1-3 MPa, 300-400 °C). Photocatalysis using sunlight offers an alternative and potentially more sustainable approach for the transformation of small molecules (H<sub>2</sub> O, CO, CO<sub>2</sub> , N<sub>2</sub> , etc.) to high-valuable products, including hydrocarbons. Herein, a novel series of Fe-based heterostructured photocatalysts (Fe-x) is successfully fabricated via H<sub>2</sub> reduction of ZnFeAl-layered double hydroxide (LDH) nanosheets at temperatures (x) in the range 300-650 °C. At a reduction temperature of 500 °C, the heterostructured photocatalyst formed (Fe-500) consists of Fe<sup>0</sup> and FeO<sub>x</sub> nanoparticles supported by ZnO and amorphous Al<sub>2</sub> O<sub>3</sub> . Fe-500 demonstrates remarkable CO hydrogenation performance with very high initial selectivities toward hydrocarbons (89%) and especially light olefins (42%), and a very low selectivity towards CO<sub>2</sub> (11%). The intimate and abundant interfacial contacts between metallic Fe<sup>0</sup> and FeO<sub>x</sub> in the Fe-500 photocatalyst underpins its outstanding photocatalytic performance. The photocatalytic production of high-value light olefins with suppressed CO<sub>2</sub> selectivity from CO hydrogenation is demonstrated here.
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