Area of research
Materials Chemistry · Inorganic Chemistry
Research interest
Research interests include Lanthanide and Transition Metal Complexes, Metal-Organic Frameworks: Synthesis and Applications, Luminescence Properties of Advanced Materials, and Molecular Sensors and Ion Detection.
Phosphate Molecular Tweezers Constructed From Internal Sites Within One‐Dimensional Covalent Organic Frameworks for High‐Precision Uranium‐Capturing
Donor-Acceptor Engineering in Covalent Organic Frameworks Enabling Dual Fluorescence and Nanozyme Activity for On-Site Antibiotic Detection.
Photoresponsive HOF-Based Intelligent Packaging for Real-Time Monitoring Food Freshness.
Three-Dimensional Covalent Organic Frameworks Containing Diverse Nitrogen Sites for Gold Adsorption
Defect engineering in β-ketoenamine-linked covalent organic frameworks for high-efficiency uranium extraction
Detecting Like a Dog: Biomimetic Olfactory Sensory Fiber for Ultrasensitive Tracing of Illicit Drugs Simulants Based on Photoluminescent HOF Nanosheets
Tb(<scp>iii</scp>)-functionalized MOF hybridized bis-crosslinked networked hydrogel luminescent films for arginine and dopamine hydrochloride sensing and anticounterfeiting
Regulating the Azo‐Functionalization of Covalent Organic Frameworks for Photo‐Modulated Adsorption and Sensing of Aniline
σ‐π Hyperconjugation as a Design Strategy for High‐Performance Fluorescent Covalent Organic Frameworks
Bionic Luminescent Sensors Based on Covalent Organic Frameworks: Auditory, Gustatory, and Olfactory Information Monitoring for Multimode Perception.
σ‐π Hyperconjugation as a Design Strategy for High‐Performance Fluorescent Covalent Organic Frameworks
Fluorescent Microneedle Sensors Based on Tb<sup>3+</sup>@Hydrogen-Bonded Organic Frameworks for Real-Time Food Freshness Monitoring.
Distinct Effect of Conjugation Units in Covalent Organic Frameworks on Iodine and Gold Adsorption.
Multifunctional Hydrogen-Bonded Organic Frameworks for Intelligent Anti-Counterfeiting and Food Safety Monitoring.
Smart Photoresponsive Label with Red Fluorescence and Blue Phosphorescence Promoted by Hydrogen-Bonded Organic Frameworks for Food Additives Detection.
σ-π Hyperconjugation as a Design Strategy for High-Performance Fluorescent Covalent Organic Frameworks.
σ‐π Hyperconjugation as a Design Strategy for High‐Performance Fluorescent Covalent Organic Frameworks
Ultrasensitive Force-and-Wind Dual-Mode Biomimetic Sensor Based on Mimosa-Motivated Tb@HOF Photoexcited Foam for Artificial Intelligence-Assisted Human Health Monitoring.
Construction of Cationic Covalent Organic Frameworks Based on Nitrogen Sites for Adsorption of Anionic Dyes.
Photoresponsive HOF-Based Platforms for Large Language Model-Assisted Multimodal Diagnosis of Metabolic Diseases.
Leveraging Host-Guest Assemblies toward Simultaneous Intensification of Phosphorescence and Nanozyme Activity for Triple-Modal Hypochlorous Acid Detection.
Tb(III)-Functionalized Hydrogen-Bonded Organic Framework with Dual-Emission for Liver Health Biomarker Detection and a Smartphone-Integrated Bionic Visual Diagnostic Platform.
One-dimensional fluorescent covalent organic frameworks rich in exposed sp<sup>3</sup>-N sites for ultra-fast iodine capture and visual monitoring.
Exciton Regulation and Fluorescence Switching via Redox-Responsive Heterojunction Interfaces.
Migratory Animals-Enlightened Hydrogen-Bonded Organic Framework Nanorods Electrodeposited Nickel-Based Fabrics for Ultrafast and Ultrasensitive Dual-Environmental Magnetic Field Luminescence Responsive Monitoring Both in Air and Water.
Rare earth hybrid materials based on hydrogen-bonded organic frameworks for luminescence response sensing applications.
Exciton Regulation and Fluorescence Switching via Redox‐Responsive Heterojunction Interfaces
Development and prospects of covalent organic framework-based ratiometric fluorescent sensors
Lanthanide Functionalized Hydrogen-bonded Organic Framework Hybrid Materials: Luminescence Responsive Sensing, Intelligent Applications and Biomimetic Design
Dual‐Mode Bionic Visual–Olfactory Co‐Sensory for On‐Site Biogenic Amines Recognition and Food Freshness Prediction