CO2 to green fuel: photocatalytic process optimization study

Over the years, the world has been battling global warming issues caused by excess carbon dioxide (CO2) in the atmosphere. There is a need to reduce, convert and utilize the emitted CO2 to the atmosphere. One of the efficient approaches is to convert CO2 to fuel through photocatalysis. The present w...

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Main Authors: Ahadzi, Enyonam, M. S., Ramyashree, Priya, S. Shanmuga, Sudhakar, K., Tahir, Muhammad
Format: Article
Published: Elsevier B. V. 2021
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Online Access:http://eprints.utm.my/id/eprint/94235/
http://dx.doi.org/10.1016/j.scp.2021.100533
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spelling my.utm.942352022-03-31T15:25:19Z http://eprints.utm.my/id/eprint/94235/ CO2 to green fuel: photocatalytic process optimization study Ahadzi, Enyonam M. S., Ramyashree Priya, S. Shanmuga Sudhakar, K. Tahir, Muhammad TP Chemical technology Over the years, the world has been battling global warming issues caused by excess carbon dioxide (CO2) in the atmosphere. There is a need to reduce, convert and utilize the emitted CO2 to the atmosphere. One of the efficient approaches is to convert CO2 to fuel through photocatalysis. The present work concentrates on process modeling and simulation of CO2 conversion to methanol using Cu/TiO2 photocatalyst. Design expert 11.1.2.0. Response Surface Methodology was implemented to study the effect of process parameters, including temperature, pressure, and feed flow rate. 3D surface plots were used to analyze the impact of parameters. P-value <0.0001 showed that the model is significant. The optimized conditions of 350°C temperature, the pressure of 100 kPa, and the H2O/CO2 molar ratio of 5 are obtained through response surface methodology and the desirability function. With the desirability of 1.000, the optimized conditions reported the predicted conversion and yield of 48.496% and 54.071%, respectively. The simulated conversion and yield obtained are 48.99% and 54.42%, respectively. The energy analysis found that the electricity, cooling water, and steam generation costs were 65,772.886 USD yr-1, 2,674.944 USD yr-1, and 18,43,556.2 USD yr-1 respectively. The agreement between the simulated and predicted value supports mathematical modeling to predict CO2 conversion and methanol yield. Elsevier B. V. 2021-12 Article PeerReviewed Ahadzi, Enyonam and M. S., Ramyashree and Priya, S. Shanmuga and Sudhakar, K. and Tahir, Muhammad (2021) CO2 to green fuel: photocatalytic process optimization study. Sustainable Chemistry and Pharmacy, 24 . ISSN 2352-5541 http://dx.doi.org/10.1016/j.scp.2021.100533 DOI:10.1016/j.scp.2021.100533
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Ahadzi, Enyonam
M. S., Ramyashree
Priya, S. Shanmuga
Sudhakar, K.
Tahir, Muhammad
CO2 to green fuel: photocatalytic process optimization study
description Over the years, the world has been battling global warming issues caused by excess carbon dioxide (CO2) in the atmosphere. There is a need to reduce, convert and utilize the emitted CO2 to the atmosphere. One of the efficient approaches is to convert CO2 to fuel through photocatalysis. The present work concentrates on process modeling and simulation of CO2 conversion to methanol using Cu/TiO2 photocatalyst. Design expert 11.1.2.0. Response Surface Methodology was implemented to study the effect of process parameters, including temperature, pressure, and feed flow rate. 3D surface plots were used to analyze the impact of parameters. P-value <0.0001 showed that the model is significant. The optimized conditions of 350°C temperature, the pressure of 100 kPa, and the H2O/CO2 molar ratio of 5 are obtained through response surface methodology and the desirability function. With the desirability of 1.000, the optimized conditions reported the predicted conversion and yield of 48.496% and 54.071%, respectively. The simulated conversion and yield obtained are 48.99% and 54.42%, respectively. The energy analysis found that the electricity, cooling water, and steam generation costs were 65,772.886 USD yr-1, 2,674.944 USD yr-1, and 18,43,556.2 USD yr-1 respectively. The agreement between the simulated and predicted value supports mathematical modeling to predict CO2 conversion and methanol yield.
format Article
author Ahadzi, Enyonam
M. S., Ramyashree
Priya, S. Shanmuga
Sudhakar, K.
Tahir, Muhammad
author_facet Ahadzi, Enyonam
M. S., Ramyashree
Priya, S. Shanmuga
Sudhakar, K.
Tahir, Muhammad
author_sort Ahadzi, Enyonam
title CO2 to green fuel: photocatalytic process optimization study
title_short CO2 to green fuel: photocatalytic process optimization study
title_full CO2 to green fuel: photocatalytic process optimization study
title_fullStr CO2 to green fuel: photocatalytic process optimization study
title_full_unstemmed CO2 to green fuel: photocatalytic process optimization study
title_sort co2 to green fuel: photocatalytic process optimization study
publisher Elsevier B. V.
publishDate 2021
url http://eprints.utm.my/id/eprint/94235/
http://dx.doi.org/10.1016/j.scp.2021.100533
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score 13.209306