Area of research
Materials Chemistry · Biomedical Engineering
Research interest
Research interests include Luminescence and Fluorescent Materials, Nanoplatforms for cancer theranostics, Molecular Sensors and Ion Detection, and Advanced biosensing and bioanalysis techniques.
Herbal polysaccharide-based carrier enhances immunogenic cell death in cancer chemotherapy
Targeted antibacterial photodynamic therapy with aggregation‐induced emission photosensitizers
Lysosome-Targeting Aggregation-Induced Emission Nanoparticle Enables Adoptive Macrophage Transfer-Based Precise Therapy of Bacterial Infections
Point-of-Care Urinalysis with One Drop of Sample Using an Aggregation-Induced Emission Luminogen under the Coffee-Ring Effect
Rapid and high-throughput testing of antifungal susceptibility using an AIEgen-based analytical system
Novel skewed usage of B-cell receptors in COVID-19 patients with various clinical presentations
High-performance tracking of bacterial extracellular vesicles in living systems using an aggregation-induced emission luminogen
Bioorthogonal Coordination Polymer Nanoparticles with Aggregation‐Induced Emission for Deep Tumor‐Penetrating Radio‐ and Radiodynamic Therapy
Hybrid Nanospheres to Overcome Hypoxia and Intrinsic Oxidative Resistance for Enhanced Photodynamic Therapy
AIEgen-coupled upconversion nanoparticles eradicate solid tumors through dual-mode ROS activation
Detection of Bacterial Alkaline Phosphatase Activity by Enzymatic In Situ Self-Assembly of the AIEgen-Peptide Conjugate
Biomimetic Nanocomposites Cloaked with Bioorthogonally Labeled Glioblastoma Cell Membrane for Targeted Multimodal Imaging of Brain Tumors
Combating bacterial infection by in situ self-assembly of AIEgen-peptide conjugate
One-step <i>in vivo</i> metabolic labeling as a theranostic approach for overcoming drug-resistant bacterial infections
Nanosilver-enhanced AIE photosensitizer for simultaneous bioimaging and photodynamic therapy
Bacterium‐Templated Polymer for Self‐Selective Ablation of Multidrug‐Resistant Bacteria
Cancer-Cell-Activated Photodynamic Therapy Assisted by Cu(II)-Based Metal–Organic Framework
Visualization and In Situ Ablation of Intracellular Bacterial Pathogens through Metabolic Labeling
An AIEgen‐Peptide Conjugate as a Phototheranostic Agent for Phagosome‐Entrapped Bacteria
Precise Molecular Engineering of Photosensitizers with Aggregation‐Induced Emission over 800 nm for Photodynamic Therapy
Bright AIEgen–Protein Hybrid Nanocomposite for Deep and High‐Resolution In Vivo Two‐Photon Brain Imaging
Photosensitizers with Aggregation‐Induced Emission: Materials and Biomedical Applications
Polymerization-Enhanced Photosensitization
Metal–Organic‐Framework‐Assisted In Vivo Bacterial Metabolic Labeling and Precise Antibacterial Therapy
A Light‐Up Probe with Aggregation‐Induced Emission for Real‐Time Bio‐orthogonal Tumor Labeling and Image‐Guided Photodynamic Therapy
Metal–Organic Framework as a Simple and General Inert Nanocarrier for Photosensitizers to Implement Activatable Photodynamic Therapy
Multicolor monitoring of cellular organelles by single wavelength excitation to visualize the mitophagy process
ONOO<sup>–</sup> and ClO<sup>–</sup> Responsive Organic Nanoparticles for Specific in Vivo Image-Guided Photodynamic Bacterial Ablation
AIEgen bioconjugates for specific detection of disease-related protein biomarkers