Area of research
Inorganic Chemistry · Materials Chemistry
Research interest
Research interests include Chemistry, Materials science, Nanotechnology, Adsorption, Metal-organic framework, and Nanoparticle.
Hybrid nanoparticle–mediated simultaneous ROS scavenging and STING activation improve the antitumor immunity of in situ vaccines
Self-Healing Hydrogen-Bonded Organic Frameworks for Low-Concentration Ammonia Capture
Multivariate Hydrogen‐Bonded Organic Frameworks with Tunable Permanent Porosities for Capture of a Mustard Gas Simulant
A Solution‐Processable Porphyrin‐Based Hydrogen‐Bonded Organic Framework for Photoelectrochemical Sensing of Carbon Dioxide
Gelothermal Synthesis of Monodisperse MIL‐88A Nanoparticles with Tunable Sizes and Metal Centers for Potential Bioapplications
Mesoporous carbon hemispheres integrated with Fe–Gd nanoparticles for potential MR/PA imaging-guided photothermal therapy
Hybrid Nanomaterials for Cancer Immunotherapy
Ultrafine Silver Nanoparticle Encapsulated Porous Molecular Traps for Discriminative Photoelectrochemical Detection of Mustard Gas Simulants by Synergistic Size‐Exclusion and Site‐Specific Recognition
A General Strategy for the Synthesis of Hierarchically Ordered Metal–Organic Frameworks with Tunable Macro‐, Meso‐, and Micro‐Pores
TEA-assistant synthesis of MOF-74 nanorods for drug delivery and in-vitro magnetic resonance imaging
Reticular chemistry approach to explore the catalytic CO2-epoxide cycloaddition reaction over tetrahedral coordination Lewis acidic sites in a Rutile-type Zinc-phosphonocarboxylate framework
Unprecedented highly efficient capture of glycopeptides by Fe<sub>3</sub>O<sub>4</sub>@Mg-MOF-74 core–shell nanoparticles
Quadruple Switching of Pleated Foldamers of Tetrathiafulvalene–Bipyridinium Alternating Dynamic Covalent Polymers
A highly stable indium phosphonocarboxylate framework as a multifunctional sensor for Cu<sup>2+</sup> and methylviologen ions
A Porous Metal–Organic Framework Constructed from Carboxylate–Pyrazolate Shared Heptanuclear Zinc Clusters: Synthesis, Gas Adsorption, and Guest-Dependent Luminescent Properties
Crystal transformation synthesis of a highly stable phosphonate MOF for selective adsorption of CO<sub>2</sub>
Enhancing CO<sub>2</sub>adsorption of a Zn-phosphonocarboxylate framework by pore space partitions