Area of research
Materials Chemistry · Biomedical Engineering
Research interest
Research interests include Materials science, Fluorescence, Aggregation-induced emission, Chemistry, Nanotechnology, and Photochemistry.
Achieving Efficient Organic Room-Temperature Phosphorescence through Acceptor Dendronization
Suppressing molecular motions: A pathway to enhanced organic room-temperature phosphorescence
Intramolecular Repulsive Interactions Enable High Efficiency of NIR-II Aggregation-Induced Emission Luminogens for High-Contrast Glioblastoma Imaging
Unrestricted molecular motions enable mild photothermy for recurrence-resistant FLASH antitumor radiotherapy
Aggregation-Induced Emission (AIE), Life and Health
Natural Coumarin Isomers with Dramatically Different AIE Properties: Mechanism and Application
Rational Design of NIR-II AIEgens with Ultrahigh Quantum Yields for Photo- and Chemiluminescence Imaging
Organic Long-Persistent Luminescence from a Single-Component Aggregate
A dish-like molecular architecture for dynamic ultralong room-temperature phosphorescence through reversible guest accommodation
Molecular Crystal Engineering of Organic Chromophores for NIR-II Fluorescence Quantification of Cerebrovascular Function
Hierarchical Supramolecular Self‐Assembly: Fabrication and Visualization of Multiblock Microstructures**
Oxygen Quenching-Resistant Nanoaggregates with Aggregation-Induced Delayed Fluorescence for Time-Resolved Mapping of Intracellular Microviscosity
AIEgen for cancer discrimination
ACQ‐to‐AIE Transformation: Tuning Molecular Packing by Regioisomerization for Two‐Photon NIR Bioimaging
Killing G(+) or G(−) Bacteria? The Important Role of Molecular Charge in AIE‐Active Photosensitizers
Facile Synthesis of Efficient Luminogens with AIE Features for Three‐Photon Fluorescence Imaging of the Brain through the Intact Skull
AIEgens: An emerging fluorescent sensing tool to aid food safety and quality control
Diagnosis of fatty liver disease by a multiphoton-active and lipid-droplet-specific AIEgen with nonaromatic rotors
Diagnosis of Fatty Liver Disease by a Bright, Multiphoton-Active and Lipid-Droplet-Specific AIEgen with Nonaromatic Rotors
Clusterization-triggered emission: Uncommon luminescence from common materials
Molecular Motion in Aggregates: Manipulating TICT for Boosting Photothermal Theranostics
Highly efficient photothermal nanoagent achieved by harvesting energy via excited-state intramolecular motion within nanoparticles
Non-aromatic annulene-based aggregation-induced emission system via aromaticity reversal process
Highly photostable two-photon NIR AIEgens with tunable organelle specificity and deep tissue penetration
Drawing a clear mechanistic picture for the aggregation-induced emission process
Visualization and Manipulation of Molecular Motion in the Solid State through Photoinduced Clusteroluminescence
Aggregation-induced emission: fundamental understanding and future developments
Real‐Time and High‐Resolution Bioimaging with Bright Aggregation‐Induced Emission Dots in Short‐Wave Infrared Region
Highly Efficient Photosensitizers with Far‐Red/Near‐Infrared Aggregation‐Induced Emission for In Vitro and In Vivo Cancer Theranostics
Strategies to Enhance the Photosensitization: Polymerization and the Donor–Acceptor Even–Odd Effect