Area of research
Materials Chemistry · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Catalysis, Chemistry, X-ray photoelectron spectroscopy, Porphyrin, Density functional theory, and Adsorption.
Laser-optimized Pt-Y alloy nanoparticles embedded in Pt-Y oxide matrix for high stability and ORR electrocatalytic activity
Oxygen Reduction Reaction at Single‐Site Catalysts: A Combined Electrochemical Scanning Tunnelling Microscopy and DFT Investigation on Iron Octaethylporphyrin Chloride on HOPG**
In-Depth Study of ZnS Nanoparticle Surface Properties with a Combined Experimental and Theoretical Approach
Functionalisation of Colloidal Transition Metal Sulphides Nanocrystals: A Fascinating and Challenging Playground for the Chemist
Catalytic Mechanisms of NO Reduction in a CO–NO Atmosphere at Co- and Cu-Doped SrTiO<sub>3</sub>(100) Surfaces
On-Surface Synthesis of a Pure and Long-Range-Ordered Titanium(IV)-Porphyrin Contact Layer on Titanium Dioxide
Energetics of CO oxidation on lanthanide-free perovskite systems: the case of Co-doped SrTiO<sub>3</sub>
Electronic structures of CuTPP and CuTPP(F) complexes. A combined experimental and theoretical study I
Electronic structure of CuTPP and CuTPP(F) complexes: a combined experimental and theoretical study II
Electrochemical Behavior of TiO<sub><i>x</i></sub>C<sub><i>y</i></sub> as Catalyst Support for Direct Ethanol Fuel Cells at Intermediate Temperature: From Planar Systems to Powders
Hydrogen capture by porphyrins at the TiO<sub>2</sub>(110) surface
Theoretical Studies on Anatase and Less Common TiO<sub>2</sub>Phases: Bulk, Surfaces, and Nanomaterials
Stereoselective Photopolymerization of Tetraphenylporphyrin Derivatives on Ag(110) at the Sub‐Monolayer Level
Adsorption of small molecules at the cobalt-doped SrTiO3(001) surface: A first-principles investigation
Co- and Cu-Doped Titanates: Toward a New Generation of Catalytic Converters
Atomic Structure and Special Reactivity Toward Methanol Oxidation of Vanadia Nanoclusters on TiO<sub>2</sub>(110)
A Series of Isoreticular, Highly Stable, Porous Zirconium Oxide Based Metal–Organic Frameworks
Tuning the catalytic activity of Ag(110)-supported Fe phthalocyanine in the oxygen reduction reaction
A Series of Isoreticular, Highly Stable, Porous Zirconium Oxide Based Metal–Organic Frameworks