Cargando…

The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical

Benzofuran (BF), benzothiophene (BT), indole (IN), dibenzofuran (DBF), dibenzothiophene (DBT), and carbazole (CA) are typical heterocyclic aromatic compounds (NSO-HETs), which can coexist with polycyclic aromatic hydrocarbons (PAHs) in combustion and pyrolysis conditions. In this work, quantum chemi...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Xuan, Gao, Yixiang, Zuo, Chenpeng, Zheng, Siyuan, Xu, Fei, Sun, Yanhui, Zhang, Qingzhu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6861977/
https://www.ncbi.nlm.nih.gov/pubmed/31683506
http://dx.doi.org/10.3390/ijms20215420
_version_ 1783471441487855616
author Li, Xuan
Gao, Yixiang
Zuo, Chenpeng
Zheng, Siyuan
Xu, Fei
Sun, Yanhui
Zhang, Qingzhu
author_facet Li, Xuan
Gao, Yixiang
Zuo, Chenpeng
Zheng, Siyuan
Xu, Fei
Sun, Yanhui
Zhang, Qingzhu
author_sort Li, Xuan
collection PubMed
description Benzofuran (BF), benzothiophene (BT), indole (IN), dibenzofuran (DBF), dibenzothiophene (DBT), and carbazole (CA) are typical heterocyclic aromatic compounds (NSO-HETs), which can coexist with polycyclic aromatic hydrocarbons (PAHs) in combustion and pyrolysis conditions. In this work, quantum chemical calculations were carried out to investigate the formation of DBF, DBT, and CA from the reactions of BF, BT, and IN with a cyclopentadienyl radical (CPDyl) by using the hybrid density functional theory (DFT) at the MPWB1K/6-311+G(3df,2p)//MPWB1K/6-31+G(d,p) level. The rate constants of crucial elementary steps were deduced over 600−1200 K, using canonical variational transition state theory with a small-curvature tunneling contribution (CVT/SCT). This paper showed that the production of DBF, DBT, and CA from the reactions of BF, BT, and IN with CPDyl involved six elementary steps: the addition reaction, ring closure, the first H shift, C–C cleavage, the second H shift, and elimination of CH(3) or H. The cleavage of the C–C bond was regarded as the rate-determining step for each pathway due to the extremely high barrier. The 1-methyl substituted products were more easily formed than the 4-methyl substituted products. The main products were DBF and 1-methyl-DBF, DBT and 1-methyl-DBT, and CA and 1-methyl-CA for reactions of BF, BT, and IN with CPDyl, respectively. The ranking of DBF, DBT, and CA formation potential was as follows: DBT and methyl-DBT formation > DBF and methyl-DBF formation > CA, and methyl-CA formation. Comparison with the reaction of naphthalene with CPDyl indicated that the reactions of CPDyl attacking a benzene ring and a furan/thiophene/pyrrole ring could be inferred to be comparable under high temperature conditions.
format Online
Article
Text
id pubmed-6861977
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-68619772019-12-05 The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical Li, Xuan Gao, Yixiang Zuo, Chenpeng Zheng, Siyuan Xu, Fei Sun, Yanhui Zhang, Qingzhu Int J Mol Sci Article Benzofuran (BF), benzothiophene (BT), indole (IN), dibenzofuran (DBF), dibenzothiophene (DBT), and carbazole (CA) are typical heterocyclic aromatic compounds (NSO-HETs), which can coexist with polycyclic aromatic hydrocarbons (PAHs) in combustion and pyrolysis conditions. In this work, quantum chemical calculations were carried out to investigate the formation of DBF, DBT, and CA from the reactions of BF, BT, and IN with a cyclopentadienyl radical (CPDyl) by using the hybrid density functional theory (DFT) at the MPWB1K/6-311+G(3df,2p)//MPWB1K/6-31+G(d,p) level. The rate constants of crucial elementary steps were deduced over 600−1200 K, using canonical variational transition state theory with a small-curvature tunneling contribution (CVT/SCT). This paper showed that the production of DBF, DBT, and CA from the reactions of BF, BT, and IN with CPDyl involved six elementary steps: the addition reaction, ring closure, the first H shift, C–C cleavage, the second H shift, and elimination of CH(3) or H. The cleavage of the C–C bond was regarded as the rate-determining step for each pathway due to the extremely high barrier. The 1-methyl substituted products were more easily formed than the 4-methyl substituted products. The main products were DBF and 1-methyl-DBF, DBT and 1-methyl-DBT, and CA and 1-methyl-CA for reactions of BF, BT, and IN with CPDyl, respectively. The ranking of DBF, DBT, and CA formation potential was as follows: DBT and methyl-DBT formation > DBF and methyl-DBF formation > CA, and methyl-CA formation. Comparison with the reaction of naphthalene with CPDyl indicated that the reactions of CPDyl attacking a benzene ring and a furan/thiophene/pyrrole ring could be inferred to be comparable under high temperature conditions. MDPI 2019-10-31 /pmc/articles/PMC6861977/ /pubmed/31683506 http://dx.doi.org/10.3390/ijms20215420 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Xuan
Gao, Yixiang
Zuo, Chenpeng
Zheng, Siyuan
Xu, Fei
Sun, Yanhui
Zhang, Qingzhu
The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title_full The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title_fullStr The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title_full_unstemmed The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title_short The Gas-Phase Formation Mechanism of Dibenzofuran (DBF), Dibenzothiophene (DBT), and Carbazole (CA) from Benzofuran (BF), Benzothiophene (BT), and Indole (IN) with Cyclopentadienyl Radical
title_sort gas-phase formation mechanism of dibenzofuran (dbf), dibenzothiophene (dbt), and carbazole (ca) from benzofuran (bf), benzothiophene (bt), and indole (in) with cyclopentadienyl radical
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6861977/
https://www.ncbi.nlm.nih.gov/pubmed/31683506
http://dx.doi.org/10.3390/ijms20215420
work_keys_str_mv AT lixuan thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT gaoyixiang thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zuochenpeng thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zhengsiyuan thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT xufei thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT sunyanhui thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zhangqingzhu thegasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT lixuan gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT gaoyixiang gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zuochenpeng gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zhengsiyuan gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT xufei gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT sunyanhui gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical
AT zhangqingzhu gasphaseformationmechanismofdibenzofurandbfdibenzothiophenedbtandcarbazolecafrombenzofuranbfbenzothiophenebtandindoleinwithcyclopentadienylradical