Area of research
Electrical and Electronic Engineering · Bioengineering
Research interest
Research interests include Materials science, Heterojunction, X-ray photoelectron spectroscopy, Chemical engineering, Composite number, and Triethylamine.
NiO/ZnO composite decorated on rGO for detection of NO2
rGO decorated ZnO/CdO heterojunction as a photoanode for photoelectrochemical water splitting
Pine dendritic bismuth vanadate loaded on reduced graphene oxide for detection of low concentration triethylamine
An α-Fe<sub>2</sub>O<sub>3</sub>/NiO p–n hierarchical heterojunction for the sensitive detection of triethylamine
Photoanode of LDH catalyst decorated semiconductor heterojunction of BiVO4/CdS to enhance PEC water splitting efficiency
rGO decorated W doped BiVO4 novel material for sensing detection of trimethylamine
rGO decorated CdS/CdO composite for detection of low concentration NO2
An integrating photoanode consisting of BiVO<sub>4</sub>, rGO and LDH for photoelectrochemical water splitting
rGO decorated BiVO4/Cu2O n-n heterojunction photoanode for photoelectrochemical water splitting
Photoanode of coupling semiconductor heterojunction and catalyst for solar PEC water splitting
Fabricating of Fe2O3/BiVO4 heterojunction based photoanode modified with NiFe-LDH nanosheets for efficient solar water splitting
An Integrating Photoanode of WO<sub>3</sub>/Fe<sub>2</sub>O<sub>3</sub> Heterojunction Decorated with NiFe-LDH to Improve PEC Water Splitting Efficiency
On the construction of hollow nanofibers of ZnO-SnO2 heterojunctions to enhance the NO2 sensing properties
Pyrolyzing Co/Zn bimetallic organic framework to form p-n heterojunction of Co3O4/ZnO for detection of formaldehyde
Ordered mesoporous WO3/ZnO nanocomposites with isotype heterojunctions for sensitive detection of NO2
Novel α-Fe2O3/BiVO4 heterojunctions for enhancing NO2 sensing properties
Effect of Mo doping and NiFe-LDH cocatalyst on PEC water oxidation efficiency
Hybridization of ZnSnO3 and rGO for improvement of formaldehyde sensing properties
Metal organic frameworks-derived sensing material of SnO2/NiO composites for detection of triethylamine
Construction of NiO@ZnSnO3 hierarchical microspheres decorated with NiO nanosheets for formaldehyde sensing
Doping Metal Elements of WO<sub>3</sub> for Enhancement of NO<sub>2</sub>-Sensing Performance at Room Temperature
Facile preparation of polypyrrole-reduced graphene oxide hybrid for enhancing NH3 sensing at room temperature
Preparation of polypyrrole@WO3 hybrids with p-n heterojunction and sensing performance to triethylamine at room temperature
Preparation of conducting films based on α-MoO 3 /PANI hybrids and their sensing properties to triethylamine at room temperature
Enhancement of NO<sub>2</sub>-Sensing Performance at Room Temperature by Graphene-Modified Polythiophene
A flexible sensor based on polyaniline hybrid using ZnO as template and sensing properties to triethylamine at room temperature
Synthesis of Sb doping hierarchical WO3 microspheres and mechanism of enhancing sensing properties to NO2
Heterostructures of polyaniline@SnO<sub>2</sub> loading on flexible PET thin films for triethylamine detection at room temperature
Synthesis of SnO2–CuO heterojunction using electrospinning and application in detecting of CO
Polyaniline@SnO2 heterojunction loading on flexible PET thin film for detection of NH3 at room temperature