Area of research
Inorganic Chemistry · Organic Chemistry
Research interest
Research interests include Overpotential, Catalysis, Water splitting, Oxygen evolution, Electrocatalyst, and Materials science.
Unraveling the π-interaction of NiFe-based metal–organic frameworks with enhanced oxygen evolution: Optimizing electronic structure and facilitating electron transfer modulation
Adjusting the valence band center of Co-Ni-bimetallic sulfides through lattice expansion and stacking faults triggered by strain engineering to boost oxygen evolution reaction
Redox-active ligands enhance oxygen evolution reaction activity: Regulating the spin state of ferric ions and accelerating electron transfer
Amorphous dominated metal hydroxide-organic framework with compositional and structural heterogeneity for enhancing anodic electro-oxidation reactions
Vacancy-Assisted Fast Electron Transport Non-noble Metal Electrocatalyst Mn0.09-MoS2 for Hydrogen Evolution Reaction
Modulating carbon-supported transition metal oxide by electron-giving and electron-absorbing functional groups towards efficient overall water splitting
Lattice distortion of crystalline-amorphous nickel molybdenum sulfide nanosheets for high-efficiency overall water splitting: libraries of lone pairs of electrons and <i>in situ</i> surface reconstitution
Sulfur defect rich Mo-Ni<sub>3</sub>S<sub>2</sub> QDs assisted by O–CO chemical bonding for an efficient electrocatalytic overall water splitting
Double MOF gradually activated S bond induced S defect rich MILN-based Co(z)-NiMoS for efficient electrocatalytic overall water splitting
Enantioselective Palladium‐Catalyzed Cross‐Coupling of α‐Bromo Carboxamides and Aryl Boronic Acids