Enhanced visible light-active CeO2/CuO/Ag2CrO4 ternary heterostructures based on CeO2/CuO nanofiber heterojunctions for the simultaneous degradation of a binary mixture of dyes
Abstract
In the present work, a novel CeO2/CuO/Ag2CrO4 ternary nanocomposite based on CeO2/CuO fibers by loading Ag2CrO4 nanoparticles has been prepared using electrospinning, calcination and chemical precipitation methods. The samples were characterized by field emission scanning electron microscopy (FESEM), energy dispersive X-ray (EDX) spectroscopy, X-ray diffraction (XRD), UV-vis diffuse reflectance spectroscopy (DRS), transmission electron microscopy (TEM), Brunauer–Emmett–Teller (BET) method and Fourier-transform infrared spectroscopy (FT-IR). The as-obtained CeO2/CuO/Ag2CrO4 composite exhibited excellent photocatalytic performance in the photo-degradation of a mixture of Rose bengal (RB) and methylene blue (MB) in an aqueous solution under visible light (LED) irradiation. DRS analysis illustrated that the CeO2/CuO/Ag2CrO4 composite exhibited enhanced absorption in the visible region, which was attributed to the CeO2/CuO nanofibers. The as-synthesized photocatalyst demonstrated higher photocatalytic activities compared to the single CeO2/CuO nanofibers and Ag2CrO4 nanoparticles. Furthermore, the ternary composite exhibited the highest RB and MB photo-degradation rates of about 0.0299 and 0.0235 min−1, respectively, at 300 rpm under visible light irradiation. The effect of four effective variables, namely, the initial concentrations of RB and MB, photocatalyst dosage, and irradiation time was studied and optimized using the central composite design. The kinetic studies confirmed the pseudo first order reaction based on the Langmuir–Hinshelwood model, while its rate constant (kobs) and L–H rate constant (kr) were 0.097 min−1 and 5.773 mg L−1 min−1 for RB and 0.0669 min−1 and 2.017 mg L−1 for MB, respectively.