Area of research
Biomedical Engineering · Materials Chemistry
Research interest
Research interests include Materials science, Photosensitizer, Photodynamic therapy, Chemistry, Fluorescence, and Aggregation-induced emission.
Direct Synthesis of Photosensitizable Bacterial Cellulose as Engineered Living Material for Skin Wound Repair
Activation of Pyroptosis by Membrane‐Anchoring AIE Photosensitizer Design: New Prospect for Photodynamic Cancer Cell Ablation
Carrier-Free Hybrid DNA Nanoparticles for Light-Induced Self-Delivery of Functional Nucleic Acid Enzymes
Nanoparticles as contrast agents for photoacoustic brain imaging
Nanobody modified high-performance AIE photosensitizer nanoparticles for precise photodynamic oral cancer therapy of patient-derived tumor xenograft
Metabolizable Photosensitizer with Aggregation-Induced Emission for Photodynamic Therapy
Hybrid Nanospheres to Overcome Hypoxia and Intrinsic Oxidative Resistance for Enhanced Photodynamic Therapy
Biodegradable Nanoscale Coordination Polymers for Targeted Tumor Combination Therapy with Oxidative Stress Amplification
Light‐Induced Self‐Escape of Spherical Nucleic Acid from Endo/Lysosome for Efficient Non‐Cationic Gene Delivery
HClO‐Activated Fluorescence and Photosensitization from an AIE Nanoprobe for Image‐Guided Bacterial Ablation in Phagocytes
Specific Near-Infrared Probe for Ultrafast Imaging of Lysosomal β-Galactosidase in Ovarian Cancer Cells
Reprogramming Tumor Microenvironment with Photothermal Therapy
Biomimetic Nanocomposites Cloaked with Bioorthogonally Labeled Glioblastoma Cell Membrane for Targeted Multimodal Imaging of Brain Tumors
Binary Organic Nanoparticles with Bright Aggregation-Induced Emission for Three-Photon Brain Vascular Imaging
Metabolically engineered bacteria as light-controlled living therapeutics for anti-angiogenesis tumor therapy
Precise Molecular Design for High‐Performance Luminogens with Aggregation‐Induced Emission
Recent advances of AIE dots in NIR imaging and phototherapy
Precise Molecular Engineering of Photosensitizers with Aggregation‐Induced Emission over 800 nm for Photodynamic Therapy
Photosensitizer-Bacteria Biohybrids Promote Photodynamic Cancer Cell Ablation and Intracellular Protein Delivery
Bio-Orthogonal AIEgen for Specific Discrimination and Elimination of Bacterial Pathogens via Metabolic Engineering
Recent Advances of Optical Imaging in the Second Near‐Infrared Window
ONOO<sup>–</sup> and ClO<sup>–</sup> Responsive Organic Nanoparticles for Specific in Vivo Image-Guided Photodynamic Bacterial Ablation
Organic molecules with propeller structures for efficient photoacoustic imaging and photothermal ablation of cancer cells