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Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO

Heterogeneous phase astrochemistry plays an important role in the synthesis of complex organic matter (COM) as found on comets and rocky body surfaces like asteroids, planetoids, moons and planets. The proposed catalytic model is based on two assumptions: (a) siliceous rocks in both crystalline or a...

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Autores principales: Fioroni, Marco, DeYonker, Nathan J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7882687/
https://www.ncbi.nlm.nih.gov/pubmed/33598449
http://dx.doi.org/10.3389/fchem.2020.621898
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author Fioroni, Marco
DeYonker, Nathan J.
author_facet Fioroni, Marco
DeYonker, Nathan J.
author_sort Fioroni, Marco
collection PubMed
description Heterogeneous phase astrochemistry plays an important role in the synthesis of complex organic matter (COM) as found on comets and rocky body surfaces like asteroids, planetoids, moons and planets. The proposed catalytic model is based on two assumptions: (a) siliceous rocks in both crystalline or amorphous states show surface-exposed defective centers such as siloxyl (Si-O•) radicals; (b) the second phase is represented by gas phase CO molecules, an abundant C(1) building block found in space. By means of quantum chemistry; (DFT, PW6B95/def2-TZVPP); the surface of a siliceous rock in presence of CO is modeled by a simple POSS (polyhedral silsesquioxane) where a siloxyl (Si-O•) radical is present. Four CO molecules have been consecutively added to the Si-O• radical and to the nascent polymeric CO (pCO) chain. The first CO insertion shows no activation free energy with ΔG(200K) = −21.7 kcal/mol forming the SiO-CO• radical. The second and third CO insertions show Δ [Formula: see text] ≤ 10.5 kcal/mol. Ring closure of the SiO-CO-CO• (oxalic anhydride) moiety as well as of the SiO-CO-CO-CO• system (di-cheto form of oxetane) are thermodynamically disfavored. The last CO insertion shows no free energy of activation resulting in the stable five member pCO ring, precursor to 1,4-epoxy-1,2,3-butanone. Hydrogenation reactions of the pCO have been considered on the SiO oxygen or on the carbons and oxygens of the pCO chains. The formation of the reactive aldehyde SiO-CHO on the siliceous surface is possible. In principle, the complete hydrogenation of the (CO)(1−4) series results in the formation of methanol and polyols. Furthermore, all the SiO-pCO intermediates and the lactone 1,4-epoxy-1,2,3-butanone product in its radical form can be important building blocks in further polymerization reactions and/or open ring reactions with H (aldehydes, polyols) or CN (chetonitriles), resulting in highly reactive multi-functional compounds contributing to COM synthesis.
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spelling pubmed-78826872021-02-16 Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO Fioroni, Marco DeYonker, Nathan J. Front Chem Chemistry Heterogeneous phase astrochemistry plays an important role in the synthesis of complex organic matter (COM) as found on comets and rocky body surfaces like asteroids, planetoids, moons and planets. The proposed catalytic model is based on two assumptions: (a) siliceous rocks in both crystalline or amorphous states show surface-exposed defective centers such as siloxyl (Si-O•) radicals; (b) the second phase is represented by gas phase CO molecules, an abundant C(1) building block found in space. By means of quantum chemistry; (DFT, PW6B95/def2-TZVPP); the surface of a siliceous rock in presence of CO is modeled by a simple POSS (polyhedral silsesquioxane) where a siloxyl (Si-O•) radical is present. Four CO molecules have been consecutively added to the Si-O• radical and to the nascent polymeric CO (pCO) chain. The first CO insertion shows no activation free energy with ΔG(200K) = −21.7 kcal/mol forming the SiO-CO• radical. The second and third CO insertions show Δ [Formula: see text] ≤ 10.5 kcal/mol. Ring closure of the SiO-CO-CO• (oxalic anhydride) moiety as well as of the SiO-CO-CO-CO• system (di-cheto form of oxetane) are thermodynamically disfavored. The last CO insertion shows no free energy of activation resulting in the stable five member pCO ring, precursor to 1,4-epoxy-1,2,3-butanone. Hydrogenation reactions of the pCO have been considered on the SiO oxygen or on the carbons and oxygens of the pCO chains. The formation of the reactive aldehyde SiO-CHO on the siliceous surface is possible. In principle, the complete hydrogenation of the (CO)(1−4) series results in the formation of methanol and polyols. Furthermore, all the SiO-pCO intermediates and the lactone 1,4-epoxy-1,2,3-butanone product in its radical form can be important building blocks in further polymerization reactions and/or open ring reactions with H (aldehydes, polyols) or CN (chetonitriles), resulting in highly reactive multi-functional compounds contributing to COM synthesis. Frontiers Media S.A. 2021-02-01 /pmc/articles/PMC7882687/ /pubmed/33598449 http://dx.doi.org/10.3389/fchem.2020.621898 Text en Copyright © 2021 Fioroni and DeYonker. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Fioroni, Marco
DeYonker, Nathan J.
Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title_full Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title_fullStr Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title_full_unstemmed Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title_short Complex Organic Matter Synthesis on Siloxyl Radicals in the Presence of CO
title_sort complex organic matter synthesis on siloxyl radicals in the presence of co
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7882687/
https://www.ncbi.nlm.nih.gov/pubmed/33598449
http://dx.doi.org/10.3389/fchem.2020.621898
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