Area of research
Materials Chemistry · Inorganic Chemistry
Research interest
Research interests include Metal-Organic Frameworks: Synthesis and Applications, Advanced Nanomaterials in Catalysis, Advanced biosensing and bioanalysis techniques, and Electrochemical sensors and biosensors.
Hierarchically Macroporous Ce-MOF Nanozyme with Enhanced Phosphoester Hydrolase- and Oxidase-like Activities for Self-Cascade Colorimetric Detection of Profenofos On-Site
A Synergetic Pore Compartmentalization and Hydrophobization Strategy for Synchronously Boosting the Stability and Activity of Enzyme
Ionic Liquid‐Mediated Dynamic Polymerization for Facile Aqueous‐Phase Synthesis of Enzyme‐Covalent Organic Framework Biocatalysts
Enzyme-Immobilized Porous Crystals for Environmental Applications
Pore‐Environment‐Dependent Photoresponsive Oxidase‐Like Activity in Hydrogen‐Bonded Organic Frameworks
Structural and Functional Insights into the Biomineralized Zeolite Imidazole Frameworks
Biomimetic Phosphohydrolase Nanozyme Based on Defect-Engineered Metal–Organic Framework
Enzymes-Encapsulated Defective Metal–Organic Framework Hydrogel Coupling with a Smartphone for a Portable Glucose Biosensor
Photodynamic Hydrogen-Bonded Biohybrid Framework: A Photobiocatalytic Cascade Nanoreactor for Accelerating Diabetic Wound Therapy
Mechanochemistry-guided reticular assembly for stabilizing enzymes with covalent organic frameworks
Hierarchically mesoporous Ce-based MOFs with enhanced alkaline phosphatase-like activity for phosphorylated biomarker sensing
Machine learning directed discrimination of virgin and recycled poly(ethylene terephthalate) based on non-targeted analysis of volatile organic compounds
Protein-directed, hydrogen-bonded biohybrid framework
Recent advances of covalent organic frameworks and their application in sample preparation of biological analysis
“Armor‐Plating” Enzymes with Metal–Organic Frameworks (MOFs)
Smartphone-assisted robust enzymes@MOFs-based paper biosensor for point-of-care detection
Embedding Functional Biomacromolecules within Peptide‐Directed Metal–Organic Framework (MOF) Nanoarchitectures Enables Activity Enhancement
Metal‐Organic Frameworks: A New Platform for Enzyme Immobilization
Iron-Mineralization-Induced Mesoporous Metal–Organic Frameworks Enable High-Efficiency Synergistic Catalysis of Natural/Nanomimic Enzymes
Modulating the Biofunctionality of Metal–Organic‐Framework‐Encapsulated Enzymes through Controllable Embedding Patterns
Solid-phase microextraction: An appealing alternative for the determination of endogenous substances - A review
A Convenient and Versatile Amino‐Acid‐Boosted Biomimetic Strategy for the Nondestructive Encapsulation of Biomacromolecules within Metal–Organic Frameworks