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  4. A novel twin reactor for CO2 photoreduction to mimic artificial photosynthesis
 
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A novel twin reactor for CO2 photoreduction to mimic artificial photosynthesis

Journal
Applied Catalysis B: Environmental
Journal Volume
132-133
Pages
445-451
Date Issued
2013
Author(s)
Lee, W.-H.
Liao, C.-H.
Tsai, M.-F.
Huang, C.-W.
Wu, J.C.S.
JEFFREY CHI-SHENG WU  
DOI
10.1016/j.apcatb.2012.12.024
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-84872181695&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/378185
Abstract
One of the best routes to covert CO2 into energy and simultaneously reduce atmospheric CO2 is photosynthesis. In natural photosynthesis, the first step is water splitting in which proton is generated and O2 is released using solar energy. The second step is the Calvin cycle in which CO2 is reduced to hydrocarbons. This study demonstrated the photocatalytic hydrogenation of CO2 by using a novel twin reactor to mimic photosynthesis process in nature. The twin reactor, which divided H2-generating photocatalyst and O2-generating photocatalyst in two compartments using a membrane, first achieved separate H2 and O2 evolution to prevent the backward reaction to form water under visible light irradiation. The generated hydrogen was then used to perform CO2 hydrogenation by CO2 reduction photocatalyst. The advantage is that CO2 hydrogenation is a spontaneous reaction based on the thermodynamics. The single photocatalyst system using Pt/CuAlGaO4 as both H2-generating photocatalyst and CO2 reduction photocatalyst, was compared with the dual photocatalyst system using Pt/SrTiO3:Rh and Pt/CuAlGaO4 as H2-generating photocatalyst and CO2 reduction photocatalyst, respectively, under simulated sunlight AM1.5G. The dual photocatalyst system has demonstrated photoreduction quantum efficiency (PQE) of 0.0051%, which is more than doubled the PQE of the single photocatalyst system. © 2012 Elsevier B.V.
Subjects
CO2 reduction; Photocatalysis; Photosynthesis; Renewable energy; Solar
SDGs

[SDGs]SDG7

Other Subjects
Artificial photosynthesis; Atmospheric CO; Backward reactions; Calvin cycle; Photo-catalytic; Photo-reduction; Photosynthesis process; Renewable energies; Simulated sunlight; Solar; Spontaneous reactions; Visible-light irradiation; Water splitting; Hydrocarbons; Hydrogen; Hydrogenation; Photocatalysis; Photosynthesis; Rhodium; Thermodynamics; Carbon dioxide
Type
journal article

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