Issue 18, 2023

Elucidating the toluene formation mechanism in the reaction of propargyl radical with 1,3-butadiene

Abstract

Toluene is one of the simplest mono-substituted benzene derivatives and an important precursor to form polycyclic aromatic hydrocarbons (PAHs) and soot. However, there is a lack of critical understanding of the formation mechanisms of the toluene molecule. In this work, we explore high-temperature reactions of propargyl radical addition to 1,3-butadiene in a tubular flow microreactor. We obtain experimental evidence for the distinct formations of three C7H8 isomers consisting of toluene, 1,3,5-cycloheptatriene, and 5-methylene-1,3-cyclohexadiene discriminated by synchrotron VUV photoionization efficiency curves. Toluene is identified as the dominant product, which shows strong contrast with the calculated results of the system. By performing theoretical calculations and kinetic simulations, we found that 5-methylene-1,3-cyclohexadiene is a key product of the primary reaction, and toluene formation is enhanced by unavoidable secondary reactions, such as unimolecular isomerization and/or H-assisted isomerization reactions in the SiC microreactor. The current work provides competitive pathways for the enhanced formation of toluene, and may further help disentangle the toluene-promoted molecular growth mechanism of PAHs in combustion environments.

Graphical abstract: Elucidating the toluene formation mechanism in the reaction of propargyl radical with 1,3-butadiene

Supplementary files

Article information

Article type
Paper
Submitted
07 Mar 2023
Accepted
25 Apr 2023
First published
26 Apr 2023

Phys. Chem. Chem. Phys., 2023,25, 13136-13144

Elucidating the toluene formation mechanism in the reaction of propargyl radical with 1,3-butadiene

J. Jin, C. Xie, J. Gao, H. Wang, J. Zhang, Y. Zhao, M. Gao, J. Ma, Z. Wang and J. Guan, Phys. Chem. Chem. Phys., 2023, 25, 13136 DOI: 10.1039/D3CP01061A

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