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This work reports an electron beam irradiation (30 kGy and 90 kGy) approach to narrow the band gap of the pristine CeO 2 nanostructure (p-CeO 2 ) to enhance their visible light activity through defect engineering. This was confirmed by diffuse reflectance spectroscopy, photoluminescence, Raman spectroscopy, X-ray diffraction, X-ray photoelectron spectroscopy (XPS), Brunauer–Emmett–Teller, electrochemical impedance spectroscopy, and linear scan voltammetry. XPS revealed changes in the surface states, composition, Ce 4+ to Ce 3+ ratio, and other defects in the modified CeO 2 nanostructures (m-CeO 2 ). The m-CeO 2 exhibits excellent photocatalytic activities by degrading 4-nitrophenol and methylene blue in the presence of visible light (λ > 400 nm) compared to the p-CeO 2 . The optical, photocatalytic, and photoelectrochemical studies and proposed mechanism further support the enhanced visible light photocatalytic activities of the m-CeO 2 . This study confirmed that defect-induced band gap engineered m-CeO 2 could be used effectively as photocatalyst and photoelectrodes owing to their enhanced visible light photocatalytic activities.
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Khan et al. (2014) studied this question.
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