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Plasmon-Driven Selective Methane Oxidation to Formic Acid at Ambient Conditions
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Publication Year
2024-02-09
Publisher
American Chemical Society
Citation
ACS Energy Letters, Vol.9, pp.538-546
Mesh Keyword
Ambient conditionsGaseous methaneGold nanoparticleGold NanoparticlesInter-band transitionMethane oxidationPartial oxidationsPhotoreactionsPlasmonics]+ catalyst
All Science Classification Codes (ASJC)
Chemistry (miscellaneous)Renewable Energy, Sustainability and the EnvironmentFuel TechnologyEnergy Engineering and Power TechnologyMaterials Chemistry
Abstract
Harnessing the capabilities of plasmonic catalysts, we present a partial oxidation approach for the selective conversion of gaseous methane to liquid formic acid (HCOOH) while suppressing carbon dioxide production. This photoreaction capitalizes on the chemical potential inherent in charge carriers generated via the interband transitions of gold nanoparticles. These energetic electron and hole carriers interact profoundly with adsorbed oxygen molecules (O2), yielding reactive singlet oxygen (1O2) species. Our investigation shows spin-forbidden transitions facilitated by a dexter-type electron exchange process. Remarkably, the resultant 1O2 species effectively reduce the energy barrier associated with C−H bond activation to 24.8 ± 3.9 kJ mol−1. This process initiates the catalytic cascade following the Eley−Rideal model at ambient conditions. Consequently, it drives the preferential production of the oxygenated liquid product, HCOOH, demonstrating an impressive selectivity of >97%. This study offers a new perspective on the O2-mediated oxidation reaction that occurs on plasmonic catalysts.
ISSN
2380-8195
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33948
DOI
https://doi.org/10.1021/acsenergylett.3c02493
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Type
Article
Funding
This study was supported by the National Research Foundation of Korea (NRF) through grants funded by the Ministry of Science and ICT (RS-2023-00212965; 2015M3D3A1A01064899 for the C1 Gas Refinery Program) and Basic Science Research Program through the NRF funded by the Ministry of Education (2021R1A6A1A10044950).
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PARK, EUN DUCK Image
PARK, EUN DUCK박은덕
Department of Chemical Engineering
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