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PMID: 40990479 Published · ppublish English Journal Article

Products of the Phenyl Radical (C6H5, X2A1) - Acetylene (C2H2, X1Σg+) Reaction in the 800-1,200 K Temperature Range.

Chemistry (Weinheim an der Bergstrasse, Germany) ·Vol. 31 ·No. 59 ·2025-10-22 ·页码 e02477

Kuznetsov OV, Evseev MM, Medvedkov IA, Tolstov GI, Khvatov NA, Antonov IO, Kaiser RI, Mebel AM, Azyazov VN

Abstract

A pulsed flow high-temperature microreactor in tandem with vacuum ultraviolet photoionization (VUV PI) reflectron time-of-flight mass spectrometry (Re-TOF-MS) was employed to determine branching ratios of key product channels of the reaction of the phenyl radical (C6H5) with acetylene (C2H2) highlighting the role of the Hydrogen Abstraction - C2H2 Addition (HACA) mechanism at temperatures of 800-1,200 K. Temporal profiles of m/z = 26 (C2H2 +), 30 (NO+), 52 (C4H4 +), 77 (C6H5 +), 78 (C6H6 +), 102 (C6H5C2H+), 103 (C6H5C2H2 +), 107 (C6H5NO+), 128 (C10H8 +), and 154 (C12H10 +) were recorded and characterized within a molecular beam. From the time profiles of the ion signals and Computational Fluid Dynamics (CFD) calculations in the transient mode, zones of the molecular beam corresponding to the open valve duration time were identified. The gas velocity along the microreactor tube axis with the opened valve is strongly influenced by the backing pressure (p) in front of the nozzle and appears to be subsonic for p = 100 Torr and supersonic for p ≥ 300 Torr. The main quantified finding is that phenylacetylene (C6H5C2H) constitutes the dominant product, accounting for up to 91% of consumed phenyl radicals at 1,200 K, whereas naphthalene (C10H8) formation is favored at lower temperatures and higher pressures, peaking at the yield of 53% (800 K, 300 Torr). The observed temperature and pressure dependence of naphthalene and phenylacetylene yields are consistent with the HACA mechanism.

Keywords
HACA mechanism PAH formation gas‐phase reactions high‐temperature microreactor radical reactions
作者与单位
共 9 位作者,点击展开单位 / ORCID
Kuznetsov Oleg V
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Evseev Mikhail M
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Medvedkov Iakov A
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia. | Department of Chemistry, University of Hawai'i at Manoa, Honolulu, HI, 96822, USA.
Tolstov Georgiy I
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Khvatov Nikolay A
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Antonov Ivan O
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Kaiser Ralf I
Department of Chemistry, University of Hawai'i at Manoa, Honolulu, HI, 96822, USA.
Mebel Alexander M ORCID
Department of Chemistry, Florida International University, Miami, Florida, 33199, USA.
Azyazov Valeriy N
Combustion physics and chemistry laboratory, Samara University, Samara, 443086, Russia.
Article Info
Journal
Chemistry (Weinheim an der Bergstrasse, Germany)
Abbr.
Chemistry
ISSN
1521-3765
Published
2025-10-22
电子出版
2025-00-24
页码
e02477
Language
English
Country/Region
Germany
NLM ID
9513783
基金资助
Russian Science Foundation · grant number 25-69-00068
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