Heterojunction of N/B/RGO and g-C3N4 anchored magnetic ZnFe2O4@ZnO for promoting UV/Vis-induced photo-catalysis and in vitro toxicity studies.
Mojtaba RostamiSepideh NayebossadrShahla MozaffariAli Sobhani-NasabMehdi Rahimi-NasrabadiMahdi Fasihi-RamandiMohammad Reza GanjaliGhasem Rezanejade BardajeeAlireza BadieiPublished in: Environmental science and pollution research international (2020)
To promote the low photocatalytic efficiency caused by the recombination of electron/hole pairs and widen the photo-response wavelength window, ZnFe2O4@ZnO-N/B/RGO and ZnFe2O4@ZnO-C3N4 ternary heterojunction nanophotocatalysts were designed and successfully prepared through a sol-gel technique. In comparison to bare ZnFe2O4 and ZnO, the ZnFe2O4-ZnO@N/B/RGO and ZnFe2O4@ZnO-C3N4 ternary products showed highly improved photocatalytic properties in the degradation of methyl orange (MO) under ultra-violet (UV) and visible light irradiation. Various physicochemical properties of the photocatalysts were evaluated through field emission scanning electron microscopy (FESEM), energy-dispersive X-ray (EDX) analysis, X-ray diffraction (XRD), UV-visible diffuse reflectance spectroscopy (DRS), Fourier transform infrared spectroscopy (FT-IR), and vibrating sample magnetometer (VSM) techniques. The observations indicated that the ternary heterojuncted ZnFe2O4@ZnO-N/B/RGO absorbs lower energy visible light wavelengths, which is an enhancement in the photocatalytic properties of ZnFe2O4@ZnO loaded on reduced graphene oxide (RGO) nanosheets and graphite-like carbon nitride (g-C3N4). This gives the catalyst photo-Fenton degradation properties.
Keyphrases
- visible light
- reduced graphene oxide
- electron microscopy
- high resolution
- gold nanoparticles
- dna damage
- computed tomography
- radiation therapy
- nitric oxide
- wastewater treatment
- low grade
- high glucose
- radiation induced
- electron transfer
- dna repair
- molecularly imprinted
- endothelial cells
- magnetic resonance
- tandem mass spectrometry