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Critical interplay between ruthenium oxide and water for the catalytic conversion of lignin to sustainable aviation fuel
  • Verma, Deepak ;
  • Chun, Hee Joon ;
  • Karanwal, Neha ;
  • Choi, Jongho ;
  • Oh, Suryun ;
  • Min Kim, Seung ;
  • Ki Kim, Seok ;
  • Kim, Jaehoon
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Publication Year
2024-06-01
Publisher
Elsevier B.V.
Citation
Chemical Engineering Journal, Vol.490
Keyword
HydrodeoxygenationLigninNative oxide layerRutheniumSustainable aviation fuel
Mesh Keyword
Aviation fuelCatalytic conversionHydrodeoxygenationLignocellulosic biomassNative oxide layerNative oxidesOH-groupsOxide layerSustainable aviation fuelZero carbons
All Science Classification Codes (ASJC)
Chemistry (all)Environmental ChemistryChemical Engineering (all)Industrial and Manufacturing Engineering
Abstract
The production of renewable drop-in fuels from lignocellulosic biomass is desirable for achieving net-zero carbon emissions in the transportation sector. However, the high irregularity of lignin and its resistance to complete ring saturation and deoxygenation hinder its conversion to sustainable aviation fuels (SAFs) such as C7–C16 isoparaffins and alkylated cycloalkanes. In this study, we achieve the direct production of SAFs from lignin-derived oil over a nonacidic Ru/C catalyst in water. Hydrogen atoms generated by H2 dissociation combine with neighboring water molecules to produce hydronium ions, which are then transferred via H-shuttling to attack the double bonds and cyclic –OH groups of adsorbed reactants and intermediates. Density functional theory calculations suggest that hydrodeoxygenation in water decreases the activation energy for the direct hydrogenolysis of cyclic –OH groups over oxygen-vacant ruthenium oxide sites. The critical interplay between oxygen-vacant ruthenium oxide and water results in the almost-complete conversion of lignin-derived monomers, dimers, and bio-oils to desirable SAF components.
ISSN
1385-8947
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34167
DOI
https://doi.org/10.1016/j.cej.2024.151420
Fulltext

Type
Article
Funding
This research was supported by the Bio & Medical Technology Development Program of the National Research Foundation (NRF) funded by the Ministry of Science and ICT (MSIT), Republic of Korea (No. 2022M3A9F3017700 ). Additional supports were provided by an NRF grant funded by MSIT , Republic of Korea (No. 2020M1A2A2080430 ) and a KETEP grant funded by the Ministry of Trade, industry and Energy ( 20224000000440 , Sector coupling energy industry advancement manpower training program). XAS experiments were performed using the 10 C synchrotron beamline at the Pohang Accelerator Laboratory (PAL, Republic of Korea) under contract no. 2023-2nd -10C-013 .This research was supported by the Bio & Medical Technology Development Program of the National Research Foundation (NRF) funded by the Ministry of Science and ICT (MSIT), South Korea (No. 2022M3A9F3017700). Additional supports were provided by an NRF grant funded by MSIT, Republic of Korea (No. 2020M1A2A2080430) and a KETEP grant funded by the Ministry of Trade, industry and Energy (20224000000440, Sector coupling energy industry advancement manpower training program), South Korea. XAS experiments were performed using the 10 C synchrotron beamline at the Pohang Accelerator Laboratory (PAL, Republic of Korea) under contract no. 2023-2nd-10C-013.
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