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Efficient methane oxidation to formaldehyde via photon-phonon cascade catalysis

Chemistry

Efficient methane oxidation to formaldehyde via photon-phonon cascade catalysis

Y. Xu, C. Wang, et al.

Discover the groundbreaking research conducted by Youxun Xu and colleagues, unveiling a new photon-phonon-driven cascade reaction that converts methane to formaldehyde with remarkable productivity and selectivity. The innovative use of a ZnO catalyst with single Ru atoms promises enhanced efficiency and reduced energy consumption in the chemical process.

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~3 min • Beginner • English
Abstract
The oxidation of methane to value-added chemicals provides an opportunity to use this abundant feedstock for sustainable petrochemistry. Unfortunately, such technologies remain insufficiently competitive due to a poor selectivity and a low yield rate for target products. Here we show a photon-phonon-driven cascade reaction that allows for methane conversion to formaldehyde with an unprecedented productivity of 401.5 µmol h−1 (or 40,150 µmol g−1 h−1) and a high selectivity of 90.4% at 150 °C. Specifically, with a ZnO catalyst decorated with single Ru atoms, methane first reacts with water to selectively produce methyl hydroperoxide via photocatalysis, followed by a thermodecomposition step yielding formaldehyde. Single Ru atoms, serving as electron acceptors, improve charge separation and promote oxygen reduction in photocatalysis. This reaction route with minimized energy consumption and high efficiency suggests a promising pathway for the sustainable transformation of light alkanes.
Publisher
Nature Sustainability
Published On
Sep 01, 2024
Authors
Youxun Xu, Chao Wang, Xiyi Li, Lunqiao Xiong, Tianyu Zhang, Liquan Zhang, Qinghua Zhang, Lin Gu, Yang Lan, Junwang Tang
Tags
photon-phonon-driven
cascade reaction
methane conversion
formaldehyde
ZnO catalyst
single Ru atoms
energy efficiency
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