Area of research
Atomic and Molecular Physics, and Optics · Renewable Energy, Sustainability and the Environment
Research interest
Research focused on Selectivity and Butanol, with related work in X-ray photoelectron spectroscopy, Hydrothermal circulation, Heterojunction. Notable publications include 'High response and selectivity of bimetallic MOFs-derived metal oxides Co3O4/In2O3 nanoparticles to TEA', 'Gas sensing selectivity of SnO2-xNiO sensors for homogeneous gases and its selectivity mechanism: Experimental and theoretical studies', and 'High-performance ethanol gas sensor with fast response/recovery rate based on the construction of SnO2-CdS heterojunction'.
Outstandingly selective n-butanol gas sensor based on ZnS/NiO lychee-shaped nanospheres
High-performance ethanol gas sensor with fast response/recovery rate based on the construction of SnO2-CdS heterojunction
Improvement of gas sensitivity to ethanol by hydrothermal preparation of Dy-doped In2O3
Ultrasensitive n-butanol gas sensor based on Bi2O3-In2O3 heterostructure
One-step preparation of La2O3-modified MOF-SnO2 gas sensor for ethanol detection
Co ions doping enhances n-butanol sensing performance of In2O3 nanospheres
High response and selectivity of bimetallic MOFs-derived metal oxides Co3O4/In2O3 nanoparticles to TEA
Gas sensing selectivity of SnO2-xNiO sensors for homogeneous gases and its selectivity mechanism: Experimental and theoretical studies
High sensitivity and surface mechanism of MOFs-derived metal oxide Co3O4-SnO2 hollow spheres to ethanol
Sensitivity and selectivity Pt loaded SnO2–Co3O4 gas sensor for hydrogen detection