Area of research
Biomedical Engineering · Materials Chemistry
Research interest
Research interests include Catalysis, Chemistry, Chemical engineering, Selectivity, Zeolite, and Levulinic acid.
Design of catalysts for selective CO2 hydrogenation
Highly Durable Ruthenium Silicon Nanoalloy Robust for Electrocatalytic Reduction of Biomass-Derived Aldehydes
A Ce-CuZn catalyst with abundant Cu/Zn-OV-Ce active sites for CO2 hydrogenation to methanol
Visualizing Phase Evolution of Co<sub>2</sub>C for Efficient Fischer–Tropsch to Olefins
Boosting Low‐Temperature CO<sub>2</sub> Hydrogenation over Ni‐based Catalysts by Tuning Strong Metal‐Support Interactions
Reactant enrichment in hollow void of Pt NPs@MnOx nanoreactors for boosting hydrogenation performance
Boosting Low‐Temperature CO<sub>2</sub> Hydrogenation over Ni‐based Catalysts by Tuning Strong Metal‐Support Interactions
Enhanced Catalytic Performance through In Situ Encapsulation of Ultrafine Ru Clusters within a High-Aluminum Zeolite
Upcycling biomass waste into Fe single atom catalysts for pollutant control
Highly Selective Oxidation of Methane into Methanol over Cu-Promoted Monomeric Fe/ZSM-5
Identifying key mononuclear Fe species for low-temperature methane oxidation
Zeolite‐Tailored Active Site Proximity for the Efficient Production of Pentanoic Biofuels
Efficient Synthesis of Monomeric Fe Species in Zeolite ZSM‐5 for the Low‐Temperature Oxidation of Methane
Zeolite-supported metal catalysts for selective hydrodeoxygenation of biomass-derived platform molecules
High performing and stable supported nano-alloys for the catalytic hydrogenation of levulinic acid to γ-valerolactone
Selective, one-pot catalytic conversion of levulinic acid to pentanoic acid over Ru/H-ZSM5
Ruthenium-catalyzed hydrogenation of levulinic acid: Influence of the support and solvent on catalyst selectivity and stability