Area of research
Electronic, Optical and Magnetic Materials · Electrical and Electronic Engineering
Research interest
Research interests include Materials science, Mesoporous material, Nanotechnology, Oxygen evolution, Hydrazine (antidepressant), and Electrolysis.
Facile synthesis of mesoporous TiO2 architectures with tunable configurations and nanometer precision
Mesoporous TiO<sub>2</sub> Single-Crystal Particles from Controlled Crystallization-Driven Mono-Micelle Assembly as an Efficient Photocatalyst
Surface Stretching Enables Highly Disordered Graphitic Domains for Ultrahigh Rate Sodium Storage
Stepwise Monomicelle Assembly for Highly Ordered Mesoporous TiO<sub>2</sub> Membranes with Precisely Tailored Mesophase and Porosity
Synergistic Application of Multiple Machine Learning Algorithms and Hyperparameter Optimization Strategies for Net Ecosystem Productivity Prediction in Southeast Asia
Self-Assembly of Ir-Based Nanosheets with Ordered Interlayer Space for Enhanced Electrocatalytic Water Oxidation
Constructing Unique Mesoporous Carbon Superstructures via Monomicelle Interface Confined Assembly
Synthesis of Ni/NiO@MoO<sub>3−</sub><i><sub>x</sub></i> Composite Nanoarrays for High Current Density Hydrogen Evolution Reaction
Precisely Designed Mesoscopic Titania for High-Volumetric-Density Pseudocapacitance
Streamlined Mesoporous Silica Nanoparticles with Tunable Curvature from Interfacial Dynamic-Migration Strategy for Nanomotors
Synergy of Mn and Ni enhanced catalytic performance for toluene combustion over Ni-doped α-MnO2 catalysts
Synthesis of hollow CoSe2/MoSe2 nanospheres for efficient hydrazine-assisted hydrogen evolution
Energy-saving hydrogen production coupling urea oxidation over a bifunctional nickel-molybdenum nanotube array
Anodic Hydrazine Oxidation Assists Energy‐Efficient Hydrogen Evolution over a Bifunctional Cobalt Perselenide Nanosheet Electrode
Anodic Hydrazine Oxidation Assists Energy‐Efficient Hydrogen Evolution over a Bifunctional Cobalt Perselenide Nanosheet Electrode