Area of research
Renewable Energy, Sustainability and the Environment · Materials Chemistry
Research interest
Research interests include Materials science, Covalent bond, Chemistry, Catalysis, Hydrogen, and Dehydrogenation.
Porphyrin-Based Covalent Organic Frameworks Anchoring Au Single Atoms for Photocatalytic Nitrogen Fixation
Integrated interfacial design of covalent organic framework photocatalysts to promote hydrogen evolution from water
Bottom–Up Design of Photoactive Chiral Covalent Organic Frameworks for Visible-Light-Driven Asymmetric Catalysis
Cucurbit[8]uril-based water-dispersible assemblies with enhanced optoacoustic performance for multispectral optoacoustic imaging
Bottom‐Up Interfacial Design of Covalent Organic Frameworks for Highly Efficient and Selective Electrocatalysis of CO<sub>2</sub>
All sp2 carbon covalent organic frameworks
Editing Light Emission with Stable Crystalline Covalent Organic Frameworks via Wall Surface Perturbation
2,4,6‐Triphenyl‐1,3,5‐Triazine Based Covalent Organic Frameworks for Photoelectrochemical H<sub>2</sub> Evolution
Covalent Organic Frameworks: Design, Synthesis, and Functions
Covalent organic frameworks: an ideal platform for designing ordered materials and advanced applications
Covalent Organic Frameworks: Pore Design and Interface Engineering
Enhanced hydrogen desorption/absorption properties of magnesium hydride with CeF3@Gn
CNTs decorated with CoFeB as a dopant to remarkably improve the dehydrogenation/rehydrogenation performance and cyclic stability of MgH2
MoSe2 hollow nanospheres decorated with FeNi3 nanoparticles for enhancing the hydrogen storage properties of MgH2
Energy-saving hydrogen production coupling urea oxidation over a bifunctional nickel-molybdenum nanotube array
Engineering Covalent Organic Frameworks for Light-Driven Hydrogen Production from Water
Effects of nano-composites (FeB, FeB/CNTs) on hydrogen storage properties of MgH2
The Dehydrogenation Mechanism and Cycling Property of MgH <sub>2</sub> Modified by CoB/CNTs Addition
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