Area of research
Molecular Biology · Biomedical Engineering
Research interest
Research interests include Nanosensor, Materials science, Plasmon, Nanoparticle, Nanotechnology, and Decellularization.
Hollow NiMo-based nitride heterojunction with super-hydrophilic/aerophobic surface for efficient urea-assisted hydrogen production
<i>In situ</i> conversion of Co–CoN nanowires into ultrathin 2D nanosheets for highly effective catalytic hydrogenation
Morphological and heterojunctional engineering of two-dimensional porous Mo-Ni based catalysts for highly effective catalytic reduction of aromatic nitro compounds
Hollow CoP spheres assembled from porous nanosheets as high-rate and ultra-stable electrodes for advanced supercapacitors
Integration of heterointerface and porosity engineering to achieve efficient hydrogen evolution of 2D porous NiMoN nanobelts coupled with Ni particles
Two‐Dimensional Porous Molybdenum Phosphide/Nitride Heterojunction Nanosheets for pH‐Universal Hydrogen Evolution Reaction
Electronic Tuning of Ni by Mo Species for Highly Efficient Hydroisomerization of <i>n</i>-Alkanes Comparable to Pt-Based Catalysts
Porous cobalt/tungsten nitride polyhedra as efficient bifunctional electrocatalysts for overall water splitting
Two‐Dimensional Porous Molybdenum Phosphide/Nitride Heterojunction Nanosheets for pH‐Universal Hydrogen Evolution Reaction
A “competitive occupancy” strategy toward Co–N<sub>4</sub> single-atom catalysts embedded in 2D TiN/rGO sheets for highly efficient and stable aromatic nitroreduction
An electrodeposited molecularly imprinted quartz crystal microbalance sensor sensitized with AuNPs and rGO material for highly selective and sensitive detection of amantadine
Ultra-small Mo<sub>2</sub>N on SBA-15 as a highly efficient promoter of low-loading Pd for catalytic hydrogenation
A Comparative Study of the Effects of Different Decellularization Methods and Genipin-Cross-Linking on the Properties of Tracheal Matrices
Strongly coupled Ag/TiO2 heterojunctions for effective and stable photothermal catalytic reduction of 4-nitrophenol
Shape effect on a single-nanoparticle-based plasmonic nanosensor