Photocatalytic Reduction of Greenhouse Gas CO2 to Fuel

Sun is the Earth’s ultimate and inexhaustible energy source. One of the best routes to remedy the CO 2 problem is to convert it to valuable hydrocarbons using solar energy. In this study, CO 2 was photocatalytically reduced to produce methanol, methane and ethylene in a steady-state optical-fiber re...

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Veröffentlicht in:Catalysis Surveys from Asia 2009-03, Vol.13 (1), p.30-40
1. Verfasser: Wu, Jeffrey C. S.
Format: Artikel
Sprache:eng
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Zusammenfassung:Sun is the Earth’s ultimate and inexhaustible energy source. One of the best routes to remedy the CO 2 problem is to convert it to valuable hydrocarbons using solar energy. In this study, CO 2 was photocatalytically reduced to produce methanol, methane and ethylene in a steady-state optical-fiber reactor under artificial light and real sunlight irradiation. The photocatalyst was dip-coated on the optical fibers that enable the light to transmit and spread uniformly inside the reactor. The optical-fiber photoreactor, comprised of nearly 120 photocatalyst-coated fibers, was designed and assembled. The XRD spectra indicated the anatase phase for all photocatalysts. It is found that the methanol yield increased with UV light intensity. A maximum methanol yield of 4.12 μmole/g-cat h is obtained when 1.0 wt% Ag/TiO 2 photocatalyst was used under a light intensity of 10 W/cm 2 . When mixed oxide, TiO 2 –SiO 2 , is doped with Cu and Fe metals, the resulting photocatalysts show substantial difference in hydrocarbon production as well as product selectivity. Methane and ethylene were produced on Cu–Fe loaded TiO 2 –SiO 2 photocatalyst. Since dye-sensitized Cu–Fe/P25 photocatalyst can fully harvest the light energy of 400–800 nm from sunlight, its photoactivity was significantly enhanced. Finally, CO 2 photoreduction was studied by in situ IR spectroscopy and possible mechanism for the photoreaction was proposed.
ISSN:1571-1013
1571-1013
1574-9266
DOI:10.1007/s10563-009-9065-9