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Updated: Jan 7, 2026

On-line Analysis of Nitrogen Containing Compounds in Complex Hydrocarbon Matrixes
Published on: August 5, 2016
Experimental and Computational Investigation of Benzofuran Decomposition Kinetics
Yang Ma1, Yuwen Deng1, Zaili Xiong1
1School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.
Abstract:
Benzofuran (C8H6O) is a common oxygenated polycyclic aromatic hydrocarbon (OPAH) intermediate observed in the combustion of transportation and biofuels. It also serves as a crucial precursor in the formation of polycyclic aromatic hydrocarbons (PAHs) during the combustion process. This study investigated the decomposition kinetics of benzofuran by combining experimental and computational approaches. A chemical microreactor coupled with synchrotron vacuum ultraviolet photoionization mass spectrometry was employed to identify primary intermediates and products. The results revealed that fulvenallene is a major primary intermediate, while 2-ethynylphenol emerged as a unique isomeric product of benzofuran decomposition. Other significant intermediates identified include benzyl, fulvenallenyl, phenylacetylene, and benzyne. To elucidate the reaction pathways leading to these intermediates, potential energy surfaces (PESs) for unimolecular and H-addition bimolecular decomposition pathways were computed using the CCSD(T)(BD(T))/cc-pVTZ//B3LYP/6-311G(d,p) level of theory (for species with higher T1, the BD(T) method has been used). Although unimolecular decomposition pathways to fulvenallene and benzyne were identified, the associated energy barriers were considerably higher compared to the bimolecular pathways. The study identified fulvenallene as the primary ring-opening product on the C8H6O+H PES, formed predominantly through two pathways. Additionally, phenylacetylene, benzyne, and benzyl were shown to derive from this PES. Rate constants for the H-addition reactions were calculated to determine branching ratios among competing pathways. Furthermore, this study demonstrated that the primary monoaromatic intermediates, along with abundantly produced unsaturated alkyne/alkynyl radicals, act as precursors for the formation of higher (C9H8-C14H8) PAHs observed in this work.
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