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A new generation of iron carbide based nano-catalysts for the chemical storage of energy

Identifieur interne : 000099 ( France/Analysis ); précédent : 000098; suivant : 000100

A new generation of iron carbide based nano-catalysts for the chemical storage of energy

Auteurs : Alexis Bordet [France]

Source :

RBID : Hal:tel-01470575

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English descriptors

Abstract

After several decades of oblivious fossil resources consumption, humanity is now facing major issues regarding global warming and energy production and storage. In the double context of intermittent renewable energy storage and CO2 recovery, the power-to-gas approach, and especially the Sabatier reaction (catalytic hydrogenation of carbon dioxide to methane + water) is of special interest. The main goal of this thesis is to perform the Sabatier reaction using magnetically activated nano-catalysts. The use of magnetic nanoparticles to convert electromagnetic energy into heat is indeed an approach of growing interest in catalysis, even if the field of biomedicine obviously concentrate most of the applications (magnetic hyperthermia, drug delivery, etc.). In this respect, the interest of the synthesized nanoparticles for biomedical applications is studied and discussed. We describe herein a pathway to iron carbide nanoparticles allowing a fine tuning of their carbon content and magnetic properties. We show that the carbon content and the crystallinity of the synthesized nanoparticles greatly impact their magnetic heating efficiency. The Fe2.2C crystallographic phase especially appears to be the key to highly enhanced specific absorption rates (SARs). We took advantage of these exceptional heating properties to investigate the Sabatier reaction in a continuous flow reactor, the catalyst being activated through magnetic induction. The SAR of synthesized iron carbide nanoparticles appeared to be sufficient to reach the temperature required for the activation of the Sabatier reaction (typically > 250°C), and promising results were obtained in a continuous flow reactor. We were thus able to demonstrate that the concept of magnetically induced catalysis can be successfully applied to the CO2 methanation reaction and represents an approach of strategic interest in the double context of intermittent energy storage and CO2 valorization


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<p>After several decades of oblivious fossil resources consumption, humanity is now facing major issues regarding global warming and energy production and storage. In the double context of intermittent renewable energy storage and CO2 recovery, the power-to-gas approach, and especially the Sabatier reaction (catalytic hydrogenation of carbon dioxide to methane + water) is of special interest. The main goal of this thesis is to perform the Sabatier reaction using magnetically activated nano-catalysts. The use of magnetic nanoparticles to convert electromagnetic energy into heat is indeed an approach of growing interest in catalysis, even if the field of biomedicine obviously concentrate most of the applications (magnetic hyperthermia, drug delivery, etc.). In this respect, the interest of the synthesized nanoparticles for biomedical applications is studied and discussed. We describe herein a pathway to iron carbide nanoparticles allowing a fine tuning of their carbon content and magnetic properties. We show that the carbon content and the crystallinity of the synthesized nanoparticles greatly impact their magnetic heating efficiency. The Fe2.2C crystallographic phase especially appears to be the key to highly enhanced specific absorption rates (SARs). We took advantage of these exceptional heating properties to investigate the Sabatier reaction in a continuous flow reactor, the catalyst being activated through magnetic induction. The SAR of synthesized iron carbide nanoparticles appeared to be sufficient to reach the temperature required for the activation of the Sabatier reaction (typically > 250°C), and promising results were obtained in a continuous flow reactor. We were thus able to demonstrate that the concept of magnetically induced catalysis can be successfully applied to the CO2 methanation reaction and represents an approach of strategic interest in the double context of intermittent energy storage and CO2 valorization</p>
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