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Rapid formation of secondary aerosol precursors from the autoxidation of C<sub>5</sub>–C<sub>8</sub> n-aldehydes

Barua, Shawon; Kumar, Avinash; Seal, Prasenjit; Iyer, Siddharth; Rissanen, Matti (2026-04-09)

 
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Rapid_formation_of_secondary_aerosol_precursors_from_the_autoxidation_of_C5_C8_n-aldehydes.pdf (1.249Mt)
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Barua, Shawon
Kumar, Avinash
Seal, Prasenjit
Iyer, Siddharth
Rissanen, Matti
09.04.2026

Atmospheric Chemistry and Physics
doi:10.5194/acp-26-4711-2026
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi:tuni-202608249230

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Peer reviewed
Tiivistelmä
Long chain aldehydes are common atmospheric constituents, and their gas-phase oxidation form low volatility condensable products leading to secondary organic aerosol. Although the oxidation of n-aldehydes initiated by OH radicals is dominated by aldehydic hydrogen abstraction, the non-aldehydic hydrogen abstractions tend to become competitive with the increase of aldehyde carbon chain length. Here, we experimentally investigated the oxidation of C5–C8 n-aldehydes in variable reaction times (1–13 s) in a flow tube reactor coupled to a nitrate ion time-of-flight chemical ionization mass spectrometer (NO−3 -ToF-CIMS). Octanal produced highly oxygenated organic molecules (HOMs – low volatility products) with up to 7 O atoms within 1.0 s while the same level of oxygenation was acquired by pentanal within 2.3 s. In long reaction time (11–13 s) experiments, we observed HOMs with progressively more O atoms and higher product yields with the increase of carbon atoms in the precursor aldehydes. Our experiments in the presence of high NO concentrations (2 ppb to 1 ppm) showed the formation of prominent highly oxygenated organonitrates along with the suppression of HOM accretion products. However, some enhancement in the monomeric HOMs even with 6 O atoms were seen under variable NO conditions. Results from hydrogen to deuterium (H/D) exchange experiments showed that the studied n-aldehydes undergo similar autoxidation mechanisms, but the reactivity and HOM formation potential increase with increasing carbon chain length.
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Kalevantie 5
PL 617
33014 Tampereen yliopisto
oa[@]tuni.fi | Tietosuoja | Saavutettavuusseloste