Area of research
Renewable Energy, Sustainability and the Environment · Materials Chemistry
Research interest
Research focused on Catalysis and Overpotential, with related work in Oxygen evolution, Iridium, Vanadium dioxide. Notable publications include 'Design of N-Coordinated Dual-Metal Sites: A Stable and Active Pt-Free Catalyst for Acidic Oxygen Reduction Reaction', 'Iridium single-atom catalyst on nitrogen-doped carbon for formic acid oxidation synthesized using a general host–guest strategy', and 'Single Ru Atoms Stabilized by Hybrid Amorphous/Crystalline FeCoNi Layered Double Hydroxide for Ultraefficient Oxygen Evolution'.
Iridium‐Free High‐Entropy Alloy for Acidic Water Oxidation at High Current Densities
Asymmetric CO–CHO Coupling over Pr Single-Atom Alloy Enables Industrial-Level Electrosynthesis of Ethylene
Coordinately unsaturated nickel single atom electrocatalyst for efficient CO2 conversion
Recent advances in regulating the local environment of M-N4 structure for tailored chemical reactions
Graphene-confined ultrafast radiant heating for high-loading subnanometer metal cluster catalysts
The<i>in situ</i>formation of defective CoOOH catalysts from semi-oxidized Co for alkaline oxygen evolution reaction
Dual‐Metal Sites Boosting Polarization of Nitrogen Molecules for Efficient Nitrogen Photofixation
Surface Oxygen Injection in Tin Disulfide Nanosheets for Efficient CO2 Electroreduction to Formate and Syngas
Iridium single-atom catalyst on nitrogen-doped carbon for formic acid oxidation synthesized using a general host–guest strategy
Single Ru Atoms Stabilized by Hybrid Amorphous/Crystalline FeCoNi Layered Double Hydroxide for Ultraefficient Oxygen Evolution
N-Coordinated Dual-Metal Single-Site Catalyst for Low-Temperature CO Oxidation
Survey report on keratoplasty in China: A 5-year review from 2014 to 2018
Design of N-Coordinated Dual-Metal Sites: A Stable and Active Pt-Free Catalyst for Acidic Oxygen Reduction Reaction
Ultrathin Nanosheets of Half‐Metallic Monoclinic Vanadium Dioxide with a Thermally Induced Phase Transition