Dalton Transactions · 2012 · 157 citations · 38 references
Chemical EngineeringEngineeringWell-defined Olive-shaped BiPhotochemistryInorganic PhotochemistryVisible-light-responding Photocatalytic ActivityOlive-shaped Bi2s3/bivo4 MicrospheresGreen SynthesisSynthetic PhotochemistryPhotocatalysisPure BivoFunctional MaterialsCatalysisPhoto-electrochemical CellChemistryOlive-shaped BivoHybrid MaterialsPhotoelectrochemistry
Well-defined olive-shaped Bi(2)S(3)/BiVO(4) microspheres were synthesized through a limited chemical conversion route (LCCR), where olive-shaped BiVO(4) microspheres and thioacetamide (TAA) were used as precursors and sulfur source, respectively. The as-synthesized products were characterized by X-ray diffraction (XRD), field emission scanning electron microscopy (FE-SEM), high-resolution transmission microscope (HRTEM), X-ray photoelectron spectra (XPS), UV-visible diffuse-reflectance spectroscopy (UV-vis DRS), and photoluminescence (PL) spectra in detail. Compared with pure BiVO(4) microspheres and Bi(2)S(3) nanorods, the Bi(2)S(3)/BiVO(4) products showed obviously enhanced photocatalytic activity for the degradation of rhodamine B (Rh B) in aqueous solution under visible-light irradiation (λ > 400 nm). In addition, the Bi(2)S(3)/BiVO(4) composite microspheres showed good visible-light-driven photocatalytic activity for the degradation of refractory oxytetracycline (OTC) as well. On the basis of UV-vis DRS, the calculated energy band positions, and PL spectra, the mechanism of enhanced photocatalytic activity of Bi(2)S(3)/BiVO(4) was proposed. The present study provides a new strategy to design composite materials with enhanced photocatalytic performance.
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Photocatalyst releasing hydrogen from water
Kazuhiko Maeda, Kentaro Teramura, Daling Lu et al. · Nature · 2006 · 2.8K citations · Full text