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Transient radicals, persistent products: flash pyrolysis of 4-ethylguaiacol and eugenol at 1000 °C.

Created on 01 Oct 2026

Authors

Sandesh Gondarry, Andras Bodi, Maxi A Burgos Paci, Paul M Mayer

Published in

Physical chemistry chemical physics : PCCP. Oct 01, 2026. Epub Oct 01, 2026.

Abstract

The thermal decomposition of 4-ethylguaiacol and eugenol was probed in a low-pressure pyrolysis SiC microreactor at 1000 °C using imaging photoelectron photoion coincidence (iPEPICO) spectroscopy. Pyrolysis products were identified using photoion mass-selected threshold photoelectron spectroscopy (ms-TPES), supported by ionization energy calculations and Franck-Condon simulations. DFT calculations were conducted to elucidate detailed reaction mechanisms for the thermal degradation pathways, augmented with single-point CBS-QB3 composite method energy calculations and RRKM analysis to assess the competition between radical-initiated and closed-shell reaction channels. Both samples undergo homolytic O-CH3 bond cleavage to substituted hydroxyphenoxyl radicals, which is calculated to be the kinetically preferred initial step compared to the closed-shell alternative pathways. Although methyl radicals are detected in the mass spectrum, the corresponding CH3-loss products, m/z 137 for 4-ethylguaiacol and m/z 149 for eugenol, are elusive under the present conditions. This is consistent with the potential energy surface, which predicts rapid secondary chemistry. In 4-ethylguaiacol, the radical pathway accounts for a 122 Da product assigned to 2-hydroxy-p-quinone methide rather than 4-ethylphenol. In eugenol, an analogous pathway leads to a 120 Da product assigned to 2-hydroxy-6-vinylfulvene rather than 3-allylcyclopentadienone. Both pathways converge toward 94 Da products involving phenol, cyclohexadienone-related species, and ring-contracted intermediates. These results refine the radical pyrolysis mechanisms of alkylated guaiacols under low-pressure flash pyrolysis conditions and distinguish the observed downstream intermediates from plausible closed-shell alternatives.

PMID:
42817905
Bibliographic data and abstract were imported from PubMed on 01 Oct 2026.

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