Area of research
Renewable Energy, Sustainability and the Environment · Materials Chemistry
Research interest
Research interests include Materials science, Photocatalysis, Catalysis, Flue-gas desulfurization, Adsorption, and Boron nitride.
Strongly Coupled Interface in Electrostatic Self-Assembly Covalent Triazine Framework/Bi<sub>19</sub>S<sub>27</sub>Br<sub>3</sub> for High-Efficiency CO<sub>2</sub> Photoreduction
Asymmetric CuS <sub>1</sub> N <sub>4</sub> as Axial Polarization Site Trigger Rapid Charge Transport Channels for Boosting Photosynthesis of Ammonia
Fe single atom trigger asymmetric In-In polarized site pairs boosting near-infrared N2 photoreduction
Asymmetric Electron Redistribution in Niobic‐Oxygen Vacancy Associates to Tune Noncovalent Interaction in CO<sub>2</sub> Photoreduction
Reduction of Backward Scatterings at the Low-Coherence Kunwu Laser Facility
Asymmetric Associate Configuration of Nb Single Atoms Coupled Bi–O Vacancy Pairs Boosting CO<sub>2</sub> Photoreduction
Symmetry breaking by Cu-S vacancy associates creating localized polarization field with enhanced near-infrared-driven photocatalytic ammonia synthesis
General Synthesis of Metal Indium Sulfide Atomic Layers for Photocatalysis
Amorphizing MnIn<sub>2</sub>S<sub>4</sub> Atomic Layers Create an Asymmetrical InO<sub>1</sub>S<sub>5</sub> Polarization Plane for Photocatalytic Ammonia Synthesis and CO<sub>2</sub> Reduction
Tip-like copper sites on high curvature supports for non-covalent to covalent interaction tuning in CO2 photoreduction
Metal-Based Ionic Liquid Induced Strategy for Loading Single Atoms and the Coordination Mode Effect on CO<sub>2</sub> Photoreduction
Unraveling the roles of oxygen vacancies in tungsten‐based ionic liquid materials for enhanced catalytic oxidative desulfurization
Partial disorder structured BiOI atomic layers boosting excitons dissociation for photocatalytic CO2 reduction and pollutant removal
Significantly enhanced surface oxygen vacancies over W18O49 via Mo doping and plasma-induced surface reconstruction for oxidative desulfurization
Polarized Cu–Bi Site Pairs for Non‐Covalent to Covalent Interaction Tuning toward N<sub>2</sub> Photoreduction
Universal strategy engineering grain boundaries for catalytic oxidative desulfurization
Vacancy Pair-Induced Charge Rebalancing with Surface and Interfacial Dual Polarization for CO<sub>2</sub> Photoreduction
Recent progress of indium-based photocatalysts: Classification, regulation and diversified applications
Electronic state tuning over Mo-doped W18O49 ultrathin nanowires with enhanced molecular oxygen activation for desulfurization
Lower oxygen vacancy concentration in BiPO4 with unexpected higher photocatalytic activity
Engineering Dual Oxygen Simultaneously Modified Boron Nitride for Boosting Adsorptive Desulfurization of Fuel
Surface Local Polarization Induced by Bismuth‐Oxygen Vacancy Pairs Tuning Non‐Covalent Interaction for CO<sub>2</sub> Photoreduction
Highly dispersed tungsten-based quantum dots confined in porous channel induced by ionic liquid with remarkable desulfurization behavior
Cobalt nitride as a novel cocatalyst to boost photocatalytic CO2 reduction
Bismuth-rich bismuth oxyhalides: a new opportunity to trigger high-efficiency photocatalysis
Graphene-like BN@SiO2 nanocomposites as efficient sorbents for solid-phase extraction of Rhodamine B and Rhodamine 6G from food samples
Strain-Engineering of Bi<sub>12</sub>O<sub>17</sub>Br<sub>2</sub> Nanotubes for Boosting Photocatalytic CO<sub>2</sub> Reduction
Amorphous TiO<sub>2</sub>‐Derived Large‐Capacity Lithium Ion Sieve for Lithium Recovery
Atomic-level active sites steering in ultrathin photocatalysts to trigger high efficiency nitrogen fixation
Charge steering in ultrathin 2D nanomaterials for photocatalysis