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Pyrolysis and oxidation of benzene and cyclopentadiene by NOx: a ReaxFF molecular dynamics study.

Authors :
Wang, Ying
Zhou, Lei
Mao, Qian
Wang, Zhanyuan
Wei, Haiqiao
Source :
Physical Chemistry Chemical Physics (PCCP); 5/21/2023, Vol. 25 Issue 19, p13690-13701, 12p
Publication Year :
2023

Abstract

Benzene (C<subscript>6</subscript>H<subscript>6</subscript>) and 1,3-cyclopentadiene (c-C<subscript>5</subscript>H<subscript>6</subscript>) are critical intermediate species in the combustion of fossil fuel and the formation of polycyclic aromatic hydrocarbons (PAHs). This study investigates the underlying mechanisms of pyrolysis and oxidation of C<subscript>6</subscript>H<subscript>6</subscript> and c-C<subscript>5</subscript>H<subscript>6</subscript> in the presence of O<subscript>2</subscript>, NO and NO<subscript>2</subscript>, respectively, under combustion conditions via ReaxFF molecular dynamics simulations. The size growth in the pyrolysis system is accompanied by an amorphous nature as well as an increase in the C/H ratio. In the oxidation sytems, NO<subscript>2</subscript> is the most effective in the oxidation of both C<subscript>6</subscript>H<subscript>6</subscript> and c-C<subscript>5</subscript>H<subscript>6</subscript>, followed by NO and O<subscript>2</subscript>. In the presence of NO<subscript>x</subscript>, O and N radicals generated in the high-temperature decomposition reactions of NO and NO<subscript>2</subscript> are actively involved in the addition and H-abstraction reactions of C<subscript>6</subscript>H<subscript>6</subscript> and c-C<subscript>5</subscript>H<subscript>6</subscript>. Remarkably, the decomposition of NO<subscript>2</subscript> dramatically increases the number of O radicals in the system, which significantly accelerates the ring-opening of C<subscript>6</subscript>H<subscript>6</subscript> and c-C<subscript>5</subscript>H<subscript>6</subscript> by O-addition and forms linear-C<subscript>6</subscript>H<subscript>6</subscript>O and C<subscript>5</subscript>H<subscript>6</subscript>O species, respectively. Afterwards, the formation of –CH<subscript>2</subscript>– by H-transfer plays an essential role in the decomposition of linear–C<subscript>6</subscript>H<subscript>6</subscript>O and –C<subscript>5</subscript>H<subscript>6</subscript>O. Reaction pathways of O and N radicals with C<subscript>6</subscript>H<subscript>6</subscript> and c-C<subscript>5</subscript>H<subscript>6</subscript> are reported in detail. The O and N-addition of C<subscript>6</subscript>H<subscript>6</subscript> facilitate the decomposition to resonance-stabilized cyclopentadienyl radicals after the restructuring of the C–C bond. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
25
Issue :
19
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
163764810
Full Text :
https://doi.org/10.1039/d2cp04413g