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π-Diradical Aromatic Soot Precursors in Flames

[Image: see text] Soot emitted from incomplete combustion of hydrocarbon fuels contributes to global warming and causes human disease. The mechanism by which soot nanoparticles form within hydrocarbon flames is still an unsolved problem in combustion science. Mechanisms proposed to date involving pu...

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Autores principales: Martin, Jacob W., Pascazio, Laura, Menon, Angiras, Akroyd, Jethro, Kaiser, Katharina, Schulz, Fabian, Commodo, Mario, D’Anna, Andrea, Gross, Leo, Kraft, Markus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8361428/
https://www.ncbi.nlm.nih.gov/pubmed/34338507
http://dx.doi.org/10.1021/jacs.1c05030
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author Martin, Jacob W.
Pascazio, Laura
Menon, Angiras
Akroyd, Jethro
Kaiser, Katharina
Schulz, Fabian
Commodo, Mario
D’Anna, Andrea
Gross, Leo
Kraft, Markus
author_facet Martin, Jacob W.
Pascazio, Laura
Menon, Angiras
Akroyd, Jethro
Kaiser, Katharina
Schulz, Fabian
Commodo, Mario
D’Anna, Andrea
Gross, Leo
Kraft, Markus
author_sort Martin, Jacob W.
collection PubMed
description [Image: see text] Soot emitted from incomplete combustion of hydrocarbon fuels contributes to global warming and causes human disease. The mechanism by which soot nanoparticles form within hydrocarbon flames is still an unsolved problem in combustion science. Mechanisms proposed to date involving purely chemical growth are limited by slow reaction rates, whereas mechanisms relying on solely physical interactions between molecules are limited by weak intermolecular interactions that are unstable at flame temperatures. Here, we show evidence for a reactive π-diradical aromatic soot precursor imaged using non-contact atomic force microscopy. Localization of π-electrons on non-hexagonal rings was found to allow for Kekulé aromatic soot precursors to possess a triplet diradical ground state. Barrierless chain reactions are shown between these reactive sites, which provide thermally stable aromatic rim-linked hydrocarbons under flame conditions. Quantum molecular dynamics simulations demonstrate physical condensation of aromatics that survive for tens of picoseconds. Bound internal rotors then enable the reactive sites to find each other and become chemically cross-linked before dissociation. These species provide a rapid, thermally stable chain reaction toward soot nanoparticle formation and could provide molecular targets for limiting the emission of these toxic combustion products.
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spelling pubmed-83614282021-08-13 π-Diradical Aromatic Soot Precursors in Flames Martin, Jacob W. Pascazio, Laura Menon, Angiras Akroyd, Jethro Kaiser, Katharina Schulz, Fabian Commodo, Mario D’Anna, Andrea Gross, Leo Kraft, Markus J Am Chem Soc [Image: see text] Soot emitted from incomplete combustion of hydrocarbon fuels contributes to global warming and causes human disease. The mechanism by which soot nanoparticles form within hydrocarbon flames is still an unsolved problem in combustion science. Mechanisms proposed to date involving purely chemical growth are limited by slow reaction rates, whereas mechanisms relying on solely physical interactions between molecules are limited by weak intermolecular interactions that are unstable at flame temperatures. Here, we show evidence for a reactive π-diradical aromatic soot precursor imaged using non-contact atomic force microscopy. Localization of π-electrons on non-hexagonal rings was found to allow for Kekulé aromatic soot precursors to possess a triplet diradical ground state. Barrierless chain reactions are shown between these reactive sites, which provide thermally stable aromatic rim-linked hydrocarbons under flame conditions. Quantum molecular dynamics simulations demonstrate physical condensation of aromatics that survive for tens of picoseconds. Bound internal rotors then enable the reactive sites to find each other and become chemically cross-linked before dissociation. These species provide a rapid, thermally stable chain reaction toward soot nanoparticle formation and could provide molecular targets for limiting the emission of these toxic combustion products. American Chemical Society 2021-08-02 2021-08-11 /pmc/articles/PMC8361428/ /pubmed/34338507 http://dx.doi.org/10.1021/jacs.1c05030 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Martin, Jacob W.
Pascazio, Laura
Menon, Angiras
Akroyd, Jethro
Kaiser, Katharina
Schulz, Fabian
Commodo, Mario
D’Anna, Andrea
Gross, Leo
Kraft, Markus
π-Diradical Aromatic Soot Precursors in Flames
title π-Diradical Aromatic Soot Precursors in Flames
title_full π-Diradical Aromatic Soot Precursors in Flames
title_fullStr π-Diradical Aromatic Soot Precursors in Flames
title_full_unstemmed π-Diradical Aromatic Soot Precursors in Flames
title_short π-Diradical Aromatic Soot Precursors in Flames
title_sort π-diradical aromatic soot precursors in flames
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8361428/
https://www.ncbi.nlm.nih.gov/pubmed/34338507
http://dx.doi.org/10.1021/jacs.1c05030
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