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Effect of temperature on the CO(2) splitting rate in a DBD microreactor

A novel plate-to-plate dielectric barrier discharge microreactor (micro DBD) has been demonstrated in CO(2) splitting. In this design, the ground electrode has a cooling microchannel to maintain the electrode temperature in the 263–298 K range during plasma operation. A small gap size between the el...

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Autores principales: Khunda, Deema, Li, Sirui, Cherkasov, Nikolay, Rishard, Mohamed Z. M., Chaffee, Alan L., Rebrov, Evgeny V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10443439/
https://www.ncbi.nlm.nih.gov/pubmed/38014416
http://dx.doi.org/10.1039/d3re00113j
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author Khunda, Deema
Li, Sirui
Cherkasov, Nikolay
Rishard, Mohamed Z. M.
Chaffee, Alan L.
Rebrov, Evgeny V.
author_facet Khunda, Deema
Li, Sirui
Cherkasov, Nikolay
Rishard, Mohamed Z. M.
Chaffee, Alan L.
Rebrov, Evgeny V.
author_sort Khunda, Deema
collection PubMed
description A novel plate-to-plate dielectric barrier discharge microreactor (micro DBD) has been demonstrated in CO(2) splitting. In this design, the ground electrode has a cooling microchannel to maintain the electrode temperature in the 263–298 K range during plasma operation. A small gap size between the electrodes of 0.50 mm allowed efficient heat transfer from the surrounding plasma to the ground electrode surface to compensate for heat released in the reaction zone and maintain a constant temperature. The effect of temperature on CO(2) conversion and energy efficiency was studied at a voltage of 6–9 kV, a frequency of 60 kHz and a constant CO(2) flow rate of 20 ml min(−1). The CO(2) decomposition rate first increased and then decreased as the electrode temperature decreased from 298 to 263 K with a maximum rate observed at 273 K. Operation at lower temperatures enhanced the vibrational dissociation of the CO(2) molecule as opposed to electronic excitation which is the main mechanism at room temperature in conventional DBD reactors, however it also reduced the rate of elementary reaction steps. The counterplay between these two effects leads to a maximum in the reaction rate. The power consumption monotonously increased as the temperature decreased. The effective capacitance of the reactor increased by 1.5 times at 263 K as compared to that at 298 K changing the electric field distribution inside the plasma zone.
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spelling pubmed-104434392023-08-23 Effect of temperature on the CO(2) splitting rate in a DBD microreactor Khunda, Deema Li, Sirui Cherkasov, Nikolay Rishard, Mohamed Z. M. Chaffee, Alan L. Rebrov, Evgeny V. React Chem Eng Chemistry A novel plate-to-plate dielectric barrier discharge microreactor (micro DBD) has been demonstrated in CO(2) splitting. In this design, the ground electrode has a cooling microchannel to maintain the electrode temperature in the 263–298 K range during plasma operation. A small gap size between the electrodes of 0.50 mm allowed efficient heat transfer from the surrounding plasma to the ground electrode surface to compensate for heat released in the reaction zone and maintain a constant temperature. The effect of temperature on CO(2) conversion and energy efficiency was studied at a voltage of 6–9 kV, a frequency of 60 kHz and a constant CO(2) flow rate of 20 ml min(−1). The CO(2) decomposition rate first increased and then decreased as the electrode temperature decreased from 298 to 263 K with a maximum rate observed at 273 K. Operation at lower temperatures enhanced the vibrational dissociation of the CO(2) molecule as opposed to electronic excitation which is the main mechanism at room temperature in conventional DBD reactors, however it also reduced the rate of elementary reaction steps. The counterplay between these two effects leads to a maximum in the reaction rate. The power consumption monotonously increased as the temperature decreased. The effective capacitance of the reactor increased by 1.5 times at 263 K as compared to that at 298 K changing the electric field distribution inside the plasma zone. The Royal Society of Chemistry 2023-05-09 /pmc/articles/PMC10443439/ /pubmed/38014416 http://dx.doi.org/10.1039/d3re00113j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Khunda, Deema
Li, Sirui
Cherkasov, Nikolay
Rishard, Mohamed Z. M.
Chaffee, Alan L.
Rebrov, Evgeny V.
Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title_full Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title_fullStr Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title_full_unstemmed Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title_short Effect of temperature on the CO(2) splitting rate in a DBD microreactor
title_sort effect of temperature on the co(2) splitting rate in a dbd microreactor
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10443439/
https://www.ncbi.nlm.nih.gov/pubmed/38014416
http://dx.doi.org/10.1039/d3re00113j
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