High-resolution rotational spectrum analysis of 3-methylthiophene, an atmospheric precursor of sulfur-containing secondary organic aerosols

Sulfur-containing heterocyclic compounds emitted from natural and anthropogenic sources form organosulfur-rich secondary organic aerosols (SOAs) that impact climate. Accurately quantifying these precursors requires millimeter-wave spectroscopic characterisation and ground state molecular parameters. In this work, we focus on 3-methylthiophene, an atmospherically relevant sulfur heterocycle. Its rotational spectrum was recorded in the frequency range 70–100 GHz using the LPCA spectrometer at Dunkirk. Internal rotation splittings from the methyl group were fitted using the BELGI-Cs code, yielding a unitless standard deviation of 0.79 for 977 assigned transitions (vt = 0 and vt = 1). Eighteen spectroscopic parameters were determined, including the barrier to methyl internal rotation V3 = 268.66(62) cm−1 for which a comparison with structurally related molecules is made.Experimental spectrum (upper trace) recorded between 85.5 and 88.0 GHz compared to the theoretical spectrum calculated using the BELGI-Cs code (lower trace), illustrating different assigned a-type transitions JKa′,Kc′′←J′Ka′′,Kc′′′ for 3-methylthiophene.

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Journal
Molecular Physics
Published
2026-09-15
DOI
https://doi.org/10.1080/00268976.2026.2712558
Primary Topic
Molecular Spectroscopy and Structure
Type
article
Field-Weighted Citation Impact
0.00

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article

High-resolution rotational spectrum analysis of 3-methylthiophene, an atmospheric precursor of sulfur-containing secondary organic aerosols

M. Carvajal, Hamza El Hadki, Khadija Marakchi, Ahmed El Hadki et al.
Molecular Physics
Molecular Spectroscopy and Structure
article

High-resolution rotational spectrum analysis of 3-methylthiophene, an atmospheric precursor of sulfur-containing secondary organic aerosols

M. Carvajal, Hamza El Hadki, Khadija Marakchi, Ahmed El Hadki, Arnaud Cuisset, Ha Vinh Lam Nguyen, Daniele Fontanari, Isabelle Kleiner, Ghita Oubouali
article en

Abstract

Sulfur-containing heterocyclic compounds emitted from natural and anthropogenic sources form organosulfur-rich secondary organic aerosols (SOAs) that impact climate. Accurately quantifying these precursors requires millimeter-wave spectroscopic characterisation and ground state molecular parameters. In this work, we focus on 3-methylthiophene, an atmospherically relevant sulfur heterocycle. Its rotational spectrum was recorded in the frequency range 70–100 GHz using the LPCA spectrometer at Dunkirk. Internal rotation splittings from the methyl group were fitted using the BELGI-Cs code, yielding a unitless standard deviation of 0.79 for 977 assigned transitions (vt = 0 and vt = 1). Eighteen spectroscopic parameters were determined, including the barrier to methyl internal rotation V3 = 268.66(62) cm−1 for which a comparison with structurally related molecules is made.Experimental spectrum (upper trace) recorded between 85.5 and 88.0 GHz compared to the theoretical spectrum calculated using the BELGI-Cs code (lower trace), illustrating different assigned a-type transitions JKa′,Kc′′←J′Ka′′,Kc′′′ for 3-methylthiophene.

Molecular Physics
Mohammed V University (MA), Centre National de la Recherche Scientifique (FR), Institut Universitaire de France (FR), Université Paris-Est Créteil (FR), Université Paris Cité (FR), Paris-Est Sup (FR), Université du littoral côte d'opale (FR), Université Gustave Eiffel (FR), Universidad de Huelva (ES)
European Commission, Junta de Andalucía, European Regional Development Fund
Climate action
Openalex Percentile: Top 22%
Molecular Spectroscopy and Structure
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