Area of research
Renewable Energy, Sustainability and the Environment · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Graphene, Nanowire, Materials science, Oxide, and Detection limit.
Generating long‐wavelength absorption bands with enhanced deep red fluorescence and photothermal performance in fused carbon dots aggregates
Ultrathin-layered MoS2 hollow nanospheres decorating Ni3S2 nanowires as high effective self-supporting electrode for hydrogen evolution reaction
Binary Metal Phosphides with MoP and FeP Embedded in P,N-Doped Graphitic Carbon As Electrocatalysts for Oxygen Reduction
Engineering a stereo-film of FeNi<sub>3</sub> nanosheet-covered FeOOH arrays for efficient oxygen evolution
Co-vacancy-rich Co1–x S nanosheets anchored on rGO for high-efficiency oxygen evolution
In-situ structure reconstitution of NiCo2P for enhanced electrochemical water oxidation
CoSe<sub>x</sub> nanocrystalline-dotted CoCo layered double hydroxide nanosheets: a synergetic engineering process for enhanced electrocatalytic water oxidation
A highly active oxygen evolution electrocatalyst: Ultrathin CoNi double hydroxide/CoO nanosheets synthesized via interface-directed assembly
Dual-valence nickel nanosheets covered with thin carbon as bifunctional electrocatalysts for full water splitting
Co<sub>3</sub>O<sub>4</sub>nanosheets as a high-performance catalyst for oxygen evolution proceeding via a double two-electron process
Vertical α-FeOOH nanowires grown on the carbon fiber paper as a free-standing electrode for sensitive H2O2 detection
Co<sub>3</sub>O<sub>4</sub> nanocrystal ink printed on carbon fiber paper as a large-area electrode for electrochemical water splitting
Interconnected 1D Co3O4 nanowires on reduced graphene oxide for enzymeless H2O2 detection
Co<sub>2</sub>N<sub>x</sub>/nitrogen-doped reduced graphene oxide for enzymeless glucose detection