Catalysis for CO2 activation reactions with light alkanes

<p><em>CO</em><sub>2</sub>, without question, the most famous greenhouse gas, is known to have an increasing concentration in both the atmosphere and oceans. To slow down the pace not only of global warming but also the ocean acidification, several routes are proposed t...

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Main Author: Du, X
Other Authors: Edwards, P
Format: Thesis
Language:English
Published: 2016
Subjects:
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author Du, X
author2 Edwards, P
author_facet Edwards, P
Du, X
author_sort Du, X
collection OXFORD
description <p><em>CO</em><sub>2</sub>, without question, the most famous greenhouse gas, is known to have an increasing concentration in both the atmosphere and oceans. To slow down the pace not only of global warming but also the ocean acidification, several routes are proposed to effectively reduce the net emission of <em>CO</em><sub>2</sub>. Compared to Carbon Capture and Sequestration/Storage (CCS), Carbon Capture and Utilisation (CCU) has much more potential because of the lower costs of scale up and higher profitability to potentially attract capital investment.</p> <p>Different from the conventional CCU route which is to reduce <em>CO</em><sub>2</sub> to fuels with hydrogen generated via renewable-energy-driving electricity, two processes are investigated in this thesis; that of Dry Methane Reforming (DMR) and the DeHydrogenation of Propane by <em>CO</em><sub>2</sub> (DHP by <em>CO</em><sub>2</sub>). The projects on these two processes not only develop catalysts which would be suitable for the reaction performance, but also the ultimate aim is to link the processes with a renewable energy source (in the thesis we chose Solar Thermal Heating).Thermodynamic calculations and process simulations were also evaluated.</p> <p>The results of DMR unfortunately did not indicate a promising future to link with Solar Thermal Heating due to the very high temperature required during the process. However, the results of thermodynamic calculations and process simulations in DMR project illustrate a good opportunity to utilise flue gas in industry through the so-called Tri- Methane Reforming (TMR). In the DHP by <em>CO</em><sub>2</sub> process, the catalysts developed were less promising than the ones in DMR due to the severe side-reactions occurred which significantly decreased the selectivity for the desired product. However - and importantly - through our thermodynamic calculations and process simulations, the DHP by <em>CO</em><sub>2</sub> process has a bright future if the Solar Thermal Heating can be applied with the relative lower temperature requirement, making the <em>CO</em><sub>2</sub> utilisation process much easier to be fulfilled than DMR.</p>
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spelling oxford-uuid:924c17f7-5b71-4e70-b304-e0686d0413ea2022-03-26T23:24:25ZCatalysis for CO2 activation reactions with light alkanesThesishttp://purl.org/coar/resource_type/c_db06uuid:924c17f7-5b71-4e70-b304-e0686d0413eaChemistryEnglishORA Deposit2016Du, XEdwards, P<p><em>CO</em><sub>2</sub>, without question, the most famous greenhouse gas, is known to have an increasing concentration in both the atmosphere and oceans. To slow down the pace not only of global warming but also the ocean acidification, several routes are proposed to effectively reduce the net emission of <em>CO</em><sub>2</sub>. Compared to Carbon Capture and Sequestration/Storage (CCS), Carbon Capture and Utilisation (CCU) has much more potential because of the lower costs of scale up and higher profitability to potentially attract capital investment.</p> <p>Different from the conventional CCU route which is to reduce <em>CO</em><sub>2</sub> to fuels with hydrogen generated via renewable-energy-driving electricity, two processes are investigated in this thesis; that of Dry Methane Reforming (DMR) and the DeHydrogenation of Propane by <em>CO</em><sub>2</sub> (DHP by <em>CO</em><sub>2</sub>). The projects on these two processes not only develop catalysts which would be suitable for the reaction performance, but also the ultimate aim is to link the processes with a renewable energy source (in the thesis we chose Solar Thermal Heating).Thermodynamic calculations and process simulations were also evaluated.</p> <p>The results of DMR unfortunately did not indicate a promising future to link with Solar Thermal Heating due to the very high temperature required during the process. However, the results of thermodynamic calculations and process simulations in DMR project illustrate a good opportunity to utilise flue gas in industry through the so-called Tri- Methane Reforming (TMR). In the DHP by <em>CO</em><sub>2</sub> process, the catalysts developed were less promising than the ones in DMR due to the severe side-reactions occurred which significantly decreased the selectivity for the desired product. However - and importantly - through our thermodynamic calculations and process simulations, the DHP by <em>CO</em><sub>2</sub> process has a bright future if the Solar Thermal Heating can be applied with the relative lower temperature requirement, making the <em>CO</em><sub>2</sub> utilisation process much easier to be fulfilled than DMR.</p>
spellingShingle Chemistry
Du, X
Catalysis for CO2 activation reactions with light alkanes
title Catalysis for CO2 activation reactions with light alkanes
title_full Catalysis for CO2 activation reactions with light alkanes
title_fullStr Catalysis for CO2 activation reactions with light alkanes
title_full_unstemmed Catalysis for CO2 activation reactions with light alkanes
title_short Catalysis for CO2 activation reactions with light alkanes
title_sort catalysis for co2 activation reactions with light alkanes
topic Chemistry
work_keys_str_mv AT dux catalysisforco2activationreactionswithlightalkanes