Area of research
Catalysis · Materials Chemistry
Research interest
Research interests include Ionic liquids properties and applications, Catalysis and Oxidation Reactions, Catalytic Processes in Materials Science, and Catalysis and Hydrodesulfurization Studies.
Protective Effect of Platycodin D on Allergic Rhinitis in Mice through DPP4/JAK2/STAT3 Pathway Inhibition
Lewis acidic controllable SiO2@TiO2 core-shell for enhanced catalytic oxidation of aromatic sulfides in diesel
Efficient electrooxidation of 5-hydroxymethylfurfural via phosphate intercalated hydroxides: A dual-cycle mechanism
Boron nitride modified CuZn-calcinated layered double hydroxides as efficient adsorbents for tetracycline removal
Carboxyl carbon nanotubes strengthened tailorable chitosan imprinted polymers for selective adsorption of dibenzothiophene in hydrogenated diesel
Augmented electrochemical extraction lithium performance via interface alloying modification
Incorporating porous carbon materials into ionic liquid for high efficiency extraction of polycyclic aromatic hydrocarbons
Rapid, selectivity, and reversibility absorption of SO2 via purine-based deep eutectic solvents and thermodynamic analysis
A review of adsorption materials and their application of 3D printing technology in the separation process
3D printing of the multifunctional fixed-bed reactor and matched 3D-CeO2/ATP monolithic adsorbent for adsorption desulfurization
3D printing of hierarchically porous lightweight activated carbon/alumina monolithic adsorbent for adsorptive desulfurization of hydrogenated diesel
Adsorptive removal of oxytetracycline in wastewater by Cu/Al doped carbon microspheres prepared from low-molecular-weight chitosan
Construction of hierarchical porous carbons with Ph-POSS based polymers for highly efficient adsorption of polycyclic aromatic hydrocarbons
Carbazole-Based Porous Organic Polymers with Ag(I) Doping and Derived Porous Carbon for Enhanced Adsorption of Polycyclic Aromatic Hydrocarbons
Microporous boron nitride-based porous ionic liquid for enhanced extractive desulfurization of fuel
Stable Au nanoparticles confined in boron nitride shells for optimizing oxidative desulfurization
Recent advances in 3D printing for catalytic applications