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DOE OSTI · 1962568

Nanocomposite Materials for Accelerating Decarbonization

Abstract

Here, decarbonization is demonstrated by catalytic conversion of CO 2 to fuel by means of exposure of cadmium selenide (CdSe) quantum dots-titania (TiO 2 ) nanophotocatalysts to sunlight illumination. The primary products resulted from this chemical reactions are methanol, carbon monoxide, and hydrogen after several hours of exposure to sun light. The overall CO 2 conversion efficiency of such quantum dot-titania nanostructures was compared with that of pure TiO 2 nanorod array photocatalyst. Data shows an improved conversion efficiency when composite quantum dot-titania nanostructures were used in comparison with titania nanophotocatalysts. It is postulated that this is due to the additional absorbance of visible light by the quantum dots and generation of additional charge separation at the CdSe-TiO 2 interfaces. The conversion efficiency of such an artificial photosynthesis process remains to be optimized for practical applications.

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Hunyadi Murph, Simona E., Sessions, Jr., Henry. 2023-02-07. Nanocomposite Materials for Accelerating Decarbonization. https://doi.org/10.1007/978-3-031-22524-6_68

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36 MATERIALS SCIENCE↗