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Updated: Jan 10, 2026

Temperature-programmed Deoxygenation of Acetic Acid on Molybdenum Carbide Catalysts
Published on: February 7, 2017
Induction heating applied to anisole HDO using formic acid as a hydrogen source.
Verónica Naharro-Ovejero1, Mónica Dhanjani2, Gorka Salas2,3,4
1Instituto de Catálisis y Petroleoquímica (CSIC), Campus Universitario de Cantoblanco 28049 Madrid Spain a.dongil@csic.es.
This study introduces magnetic nanoparticle catalysts for efficient high-temperature reactions. Encapsulated iron-cobalt nanoparticles (FeCo@CHT) demonstrated superior performance in the hydrodeoxygenation of anisole using magnetic heating.
Area of Science:
- Catalysis
- Materials Science
- Nanotechnology
Background:
- High-temperature reactions require efficient heating methods.
- Encapsulated magnetic nanoparticles offer a novel approach for magnetically induced heating catalysis.
- Hydrodeoxygenation (HDO) of biomass-derived compounds is crucial for sustainable fuel production.
Purpose of the Study:
- To synthesize and characterize magnetic nanoparticles (Fe, Co, FeCo) encapsulated in carbon.
- To evaluate the catalytic performance of these nanoparticles in the gas-phase hydrodeoxygenation (HDO) of anisole.
- To compare magnetic heating with conventional heating for catalytic applications.
Main Methods:
- Synthesis of Fe, Co, and FeCo nanoparticles encapsulated in carbon using various methods.
- Characterization of core-shell magnetic nanoparticles (MNPs) using techniques to confirm structure and composition.
- Gas-phase HDO reaction of anisole using a rhenium oxide (ReOx) catalyst and different MNPs as heating agents.
- Comparison of catalytic activity and selectivity using formic acid (FA) or hydrogen (H2) as reductants.
Main Results:
- Successful synthesis of core-shell magnetic nanoparticles with graphitic-like carbon coatings.
- Comparable catalytic activity and selectivity using formic acid or hydrogen.
- Demonstration that carbon encapsulation effectively creates a non-catalytic heating bed.
- Identification of ReOx catalyst's efficiency in cleaving the OCH3 bond, yielding benzene as the primary product.
- FeCo@CHT MNPs exhibited the best overall properties and catalytic performance.
Conclusions:
- Carbon-encapsulated magnetic nanoparticles are effective for magnetically induced heating catalysis.
- The FeCo@CHT material shows significant promise for high-temperature catalytic applications.
- This approach facilitates efficient HDO reactions, with ReOx catalysts selectively breaking the OCH3 bond.
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