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Wettability Engineering of Solar Methanol Synthesis. | LitMetric

AI Article Synopsis

  • Engineering surfaces with hydrophobic organics can improve catalytic processes in chemical industries, particularly in methanol synthesis.
  • The study used InO as a model catalyst, which, when treated hydrophobically, achieved methanol production rates of 1436 μmol g h and a selectivity of 61%.
  • The hydrophobic coating not only repelled unwanted polar molecules, enhancing methanol synthesis but also provided active hydrogen for further reactions, showing potential effectiveness for other catalysts like FeO and CoO.

Article Abstract

Engineering the wettability of surfaces with hydrophobic organics has myriad applications in heterogeneous catalysis and the large-scale chemical industry; however, the mechanisms behind may surpass the proverbial hydrophobic kinetic benefits. Herein, the well-studied InO methanol synthesis photocatalyst has been used as an archetype platform for a hydrophobic treatment to enhance its performance. With this strategy, the modified samples facilitated the tuning of a wide range of methanol production rates and selectivity, which were optimized at 1436 μmol g h and 61%, respectively. Based on DRIFTS and temperature-programmed desorption-mass spectrometry, the surface-decorated alkylsilane coating on InO not only kinetically enhanced the methanol synthesis by repelling the produced polar molecules but also donated surface active H to facilitate the subsequent hydrogenation reaction. Such a wettability design strategy seems to have universal applicability, judged by its success with other CO hydrogenation catalysts, including FeO, CeO, ZrO, and CoO. Based on the discovered kinetic and mechanistic benefits, the enhanced hydrogenation ability enabled by hydrophobic alkyl groups unleashes the potential of the surface organic chemistry modification strategy for other important catalytic hydrogenation reactions.

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Source
http://dx.doi.org/10.1021/jacs.3c07349DOI Listing

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