Area of research
Inorganic Chemistry · Biomedical Engineering
Research interest
Research interests include Metal-Organic Frameworks: Synthesis and Applications, Nanoplatforms for cancer theranostics, Advanced Nanomaterials in Catalysis, and Advanced Photocatalysis Techniques.
Nanoscale Mixed-Ligand Metal–Organic Framework for X-ray Stimulated Cancer Therapy
Nanoscale Metal–Organic Framework with an X-ray Triggerable Prodrug for Synergistic Radiotherapy and Chemotherapy
Zinc cyclic di-AMP nanoparticles target and suppress tumours via endothelial STING activation and tumour-associated macrophage reinvigoration
Synergistic checkpoint-blockade and radiotherapy–radiodynamic therapy via an immunomodulatory nanoscale metal–organic framework
Dimensional Reduction Enhances Photodynamic Therapy of Metal–Organic Nanophotosensitizers
Monte Carlo Simulation‐Guided Design of a Thorium‐Based Metal–Organic Framework for Efficient Radiotherapy‐Radiodynamic Therapy
Tumor‐Activatable Nanoparticles Target Low‐Density Lipoprotein Receptor to Enhance Drug Delivery and Antitumor Efficacy
Nanoscale metal–organic frameworks for photodynamic therapy and radiotherapy
Nanoscale Metal–Organic Framework Confines Zinc-Phthalocyanine Photosensitizers for Enhanced Photodynamic Therapy
Rational Construction of an Artificial Binuclear Copper Monooxygenase in a Metal–Organic Framework
Integration of Earth-Abundant Photosensitizers and Catalysts in Metal–Organic Frameworks Enhances Photocatalytic Aerobic Oxidation
Nanoscale Metal–Organic Layers Detect Mitochondrial Dysregulation and Chemoresistance via Ratiometric Sensing of Glutathione and pH
Reprogramming of Neutrophils as Non-canonical Antigen Presenting Cells by Radiotherapy–Radiodynamic Therapy to Facilitate Immune-Mediated Tumor Regression
Monte Carlo Simulations Reveal New Design Principles for Efficient Nanoradiosensitizers Based on Nanoscale Metal–Organic Frameworks
Nanoscale Metal–Organic Layers for Biomedical Applications
A Substrate-Binding Metal–Organic Layer Selectively Catalyzes Photoredox Ene-Carbonyl Reductive Coupling Reactions
Metal–Organic Frameworks Significantly Enhance Photocatalytic Hydrogen Evolution and CO<sub>2</sub> Reduction with Earth-Abundant Copper Photosensitizers
Metal–Organic Frameworks Integrate Cu Photosensitizers and Secondary Building Unit-Supported Fe Catalysts for Photocatalytic Hydrogen Evolution
Cerium-Based Metal–Organic Layers Catalyze Hydrogen Evolution Reaction through Dual Photoexcitation
Metal–Organic Framework with Dual Active Sites in Engineered Mesopores for Bioinspired Synergistic Catalysis
Multistep Engineering of Synergistic Catalysts in a Metal–Organic Framework for Tandem C–O Bond Cleavage
Metal–Organic Layers Hierarchically Integrate Three Synergistic Active Sites for Tandem Catalysis
Sequential Treatment of Bioresponsive Nanoparticles Elicits Antiangiogenesis and Apoptosis and Synergizes with a CD40 Agonist for Antitumor Immunity
Titanium-Based Nanoscale Metal–Organic Framework for Type I Photodynamic Therapy
Metal–Organic Framework Stabilizes a Low-Coordinate Iridium Complex for Catalytic Methane Borylation
Nanoscale Metal–Organic Framework Overcomes Hypoxia for Photodynamic Therapy Primed Cancer Immunotherapy
Photosensitizing Metal–Organic Layers for Efficient Sunlight-Driven Carbon Dioxide Reduction
Electron Injection from Photoexcited Metal–Organic Framework Ligands to Ru<sub>2</sub> Secondary Building Units for Visible-Light-Driven Hydrogen Evolution