Area of research
Pollution · Organic Chemistry
Research interest
Research interests include Raman spectroscopy, Electric field, Materials science, Microplastics, Environmental science, and Nanotechnology.
Machine Learning Advancements and Strategies in Microplastic and Nanoplastic Detection
Substantially improved efficiency and selectivity of carbon dioxide reduction by superior hydrated electron in microdroplet
Interfacial Electric Fields Transform Brown Carbon Formation: Accelerate Radical Coupling toward Strong Light-Absorbing Products
Quantification and Characterization of Fine Plastic Particles as Considerable Components in Atmospheric Fine Particles
Significantly Accelerated Photosensitized Formation of Atmospheric Sulfate at the Air–Water Interface of Microdroplets
Nanoplastics Detected in Commercial Sea Salt
Automatic Identification of Individual Nanoplastics by Raman Spectroscopy Based on Machine Learning
Highly efficient photocatalytic H<sub>2</sub>O<sub>2</sub>production in microdroplets: accelerated charge separation and transfer at interfaces
Significant Acceleration of Photocatalytic CO<sub>2</sub> Reduction at the Gas‐Liquid Interface of Microdroplets**
Rapid detection of nanoplastics down to 20 nm in water by surface-enhanced raman spectroscopy
Strong electric field force at the air/water interface drives fast sulfate production in the atmosphere
Fast detection and 3D imaging of nanoplastics and microplastics by stimulated Raman scattering microscopy
Strategies and Challenges of Identifying Nanoplastics in Environment by Surface-Enhanced Raman Spectroscopy
Chemoselective hydrogenation of α,β-unsaturated aldehydes on hydrogenated MoOx nanorods supported iridium nanoparticles