Area of research
Materials Chemistry · Catalysis
Research interest
Research interests include Catalysis, Chemistry, Materials science, X-ray photoelectron spectroscopy, Oxygen, and Calcination.
Perspective on improving the quality of surface and material data analysis in the scientific literature with a focus on x-ray photoelectron spectroscopy (XPS)
Insights into the Effect of Metal Ratio on Cooperative Redox Enhancement Effects over Au- and Pd-Mediated Alcohol Oxidation
Influence of carbon support surface modification on the performance of nickel catalysts in carbon dioxide hydrogenation
DEVELOPMENT OF AN ANTIMICROBIAL LIPID COATING TO PREVENT INFECTIONS IN UNCEMENTED JOINT REPLACEMENTS
Au–Pd separation enhances bimetallic catalysis of alcohol oxidation
Parameters controlling octadecyl phosphonic acid self-assembled monolayers on titanium dioxide for anti-fouling biomedical applications
Oleophobic coated composite materials based on multi-layer graphitic scaffolding: applications within aircraft propellant tanks and oil-spill clean-up
Parameters Controlling Octadecyl Phosphonic Acid Self-Assembled Monolayers on Titanium Dioxide for Anti-Fouling Biomedical Applications
A residue-free approach to water disinfection using catalytic in situ generation of reactive oxygen species
The role of surface oxidation and Fe–Ni synergy in Fe–Ni–S catalysts for CO<sub>2</sub> hydrogenation
Effect of the Preparation Method of LaSrCoFeOx Perovskites on the Activity of N2O Decomposition
Oleophobic composite films based on multi-layer graphitic scaffolding
Lowering the Operating Temperature of Perovskite Catalysts for N<sub>2</sub>O Decomposition through Control of Preparation Methods
Tuning of catalytic sites in Pt/TiO2 catalysts for the chemoselective hydrogenation of 3-nitrostyrene
Molecular Biology of the Cell
Oxygen Reduction at Carbon‐Supported Lanthanides: The Role of the B‐Site
Solvent-free aerobic oxidation of alcohols using supported gold palladium nanoalloys prepared by a modified impregnation method
Surface state modulation through wet chemical treatment as a route to controlling the electrical properties of ZnO nanowire arrays investigated with XPS