Low Temperature Sunlight-Powered Reduction of CO2 to CO Using a Plasmonic Au/TiO2 Nanocatalyst

Journal Article (2021)
Author(s)

Pau Martínez Molina (TNO)

Nicole Meulendijks (TNO)

Man Xu (TNO, TU Delft - ImPhys/Optics)

Marcel A. Verheijen (Eindhoven University of Technology)

Tim den Hartog (Zuyd University of Applied Science, TNO)

Pascal Buskens (TNO)

Francesc Sastre (TNO, Universiteit Hasselt)

Research Group
ImPhys/Optics
DOI related publication
https://doi.org/10.1002/cctc.202100699 Final published version
More Info
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Publication Year
2021
Language
English
Research Group
ImPhys/Optics
Issue number
21
Volume number
13
Pages (from-to)
4507-4513
Downloads counter
314
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Abstract

Sunlight-powered reduction of CO2 to fuels and chemicals is a promising strategy to close the carbon loop and facilitate the energy transition. In this research, we demonstrate that Au nanoparticles supported on TiO2 are an efficient plasmonic catalyst for the sunlight-powered reverse water-gas shift (rWGS) reaction. A maximum CO production rate of 429 mmol ⋅ gAu−1 ⋅ h−1 with a selectivity of 98 % and an apparent quantum efficiency of 4.7 % were achieved using mildly concentrated sunlight (1.44 W ⋅ cm−2 equals 14.4 sun). The CO production rate showed an exponential increase with increasing light intensity, suggesting that the process is mainly promoted by a photothermal effect. Thermal reference experiments with the same catalysts promoted CH4 formation, dropping the CO selectivity to 70 %. Thus, mildly concentrated sunlight can efficiently and selectively enhance the promotion of the rWGS reaction without using external heating.