Deciphering Visible Light Photoreductive Conversion of CO^sub 2^ to Formic Acid and Methanol Using Waste Prepared Material

As gradual increases in atmospheric CO2 and depletion of fossil fuels have raised considerable public concern in recent decades, utilizing the unlimited solar energy to convert CO2 to fuels (e.g., formic acid and methanol) apparently could simultaneously resolve these issues for sustainable developm...

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Veröffentlicht in:Environmental science & technology 2015-02, Vol.49 (4), p.2405
Hauptverfasser: Zhang, Qian, Lin, Cheng-Fang, Chen, Bor-Yann, Ouyang, Tong, Chang, Chang-Tang
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creator Zhang, Qian
Lin, Cheng-Fang
Chen, Bor-Yann
Ouyang, Tong
Chang, Chang-Tang
description As gradual increases in atmospheric CO2 and depletion of fossil fuels have raised considerable public concern in recent decades, utilizing the unlimited solar energy to convert CO2 to fuels (e.g., formic acid and methanol) apparently could simultaneously resolve these issues for sustainable development. However, due to the complicated characteristics of CO2 reduction, the mechanism has yet to be disclosed. To clarify the postulated pathway as mentioned in the literature, the technique of electron paramagnetic resonance (ESR) was implemented herein to confirm the mechanism and related pathways of CO2 reduction under visible light using graphene-TiO2 as catalyst. The findings indicated that CO... radicals, as the main intermediates, were first detected herein to react with several hydrogen ions and electrons for the formation of CH3OH. For example, the generation of CO... radicals is possibly the vital rate-controlling step for conversion of CO2 to methanol as hypothesized elsewhere. The kinetics behind the proposed mechanism was also determined in this study. The mechanism and kinetics could provide the in-depth understanding to the pathway of CO2 reduction and disclose system optimization of maximal conversion for further application. (ProQuest: ... denotes formulae/symbols omitted.)
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However, due to the complicated characteristics of CO2 reduction, the mechanism has yet to be disclosed. To clarify the postulated pathway as mentioned in the literature, the technique of electron paramagnetic resonance (ESR) was implemented herein to confirm the mechanism and related pathways of CO2 reduction under visible light using graphene-TiO2 as catalyst. The findings indicated that CO... radicals, as the main intermediates, were first detected herein to react with several hydrogen ions and electrons for the formation of CH3OH. For example, the generation of CO... radicals is possibly the vital rate-controlling step for conversion of CO2 to methanol as hypothesized elsewhere. The kinetics behind the proposed mechanism was also determined in this study. The mechanism and kinetics could provide the in-depth understanding to the pathway of CO2 reduction and disclose system optimization of maximal conversion for further application. 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subjects Carbon dioxide
Electrons
Fossil fuels
Ions
Methanol
Solar energy
Sustainable development
title Deciphering Visible Light Photoreductive Conversion of CO^sub 2^ to Formic Acid and Methanol Using Waste Prepared Material
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