Area of research
Renewable Energy, Sustainability and the Environment · Catalysis
Research interest
Research focused on Oxygen evolution and Overpotential, with related work in Raman spectroscopy, Ammonia borane, Water splitting. Notable publications include 'In Situ Raman Study of Layered Double Hydroxide Catalysts for Water Oxidation to Hydrogen Evolution: Recent Progress and Future Perspectives', 'Alkaline titanium carbide (MXene) engineering ultrafine non-noble nanocatalysts toward remarkably boosting hydrogen evolution from ammonia borane hydrolysis', and 'Heteroatom Engineering in Earth-Abundant Cobalt Electrocatalyst for Energy-Saving Hydrogen Evolution Coupling with Urea Oxidation'.
Unraveling the mechanism of hydrogen evolution reactions in alkaline media: recent advances in <i>in situ</i> Raman spectroscopy
Alkaline functional chromium carbide: Immobilization of ultrafine ruthenium copper nanoparticles for efficient hydrogen evolution from ammonia borane hydrolysis
Engineering cobalt coordination environment with dual heteroatom doping for boosting urea-assisted hydrogen evolution
Iron-induced charge density redistribution of medium entropy alloys for ampere-level seawater electrolysis
Manipulating electronic regulation of nickel sulfide for boosting water oxidation
Pd Nanoparticles Confined by Nitrogen-Doped Carbon Architecture Derived from Zeolitic Imidazolate Frameworks for Remarkable Hydrogen Evolution from Formic Acid Dehydrogenation
In Situ Raman Study of Layered Double Hydroxide Catalysts for Water Oxidation to Hydrogen Evolution: Recent Progress and Future Perspectives
Alkaline titanium carbide (MXene) engineering ultrafine non-noble nanocatalysts toward remarkably boosting hydrogen evolution from ammonia borane hydrolysis
Heteroatom Engineering in Earth-Abundant Cobalt Electrocatalyst for Energy-Saving Hydrogen Evolution Coupling with Urea Oxidation
Elemental Charge Engineering in Cobalt and Cobalt–Phosphide Interface for Enhanced Oxygen Evolution and Urea Oxidation Reactions