Mass-independent fractionation of oxygen isotopes during high-temperature condensation in cosmochemical plasmas

N Nathan Asset (Universite Paris-Cite, Institut de Physique du Globe de Paris, CNRS) M Marc Chaussidon G Guillaume Lombardi (Laboratoire des Sciences des Procédés et des Matériaux (LSPM—CNRS), Université Sorbonne Paris Nord) J Johan Villeneuve (Centre de Recherches Pétrographiques et Géochimiques, CNRS, Université de Lorraine) R Romain Tartèse (Department of Earth and Environmental Sciences, The University of Manchester) S Smail Mostefaoui (Institut Origine et Evolution, Muséum National d’Histoire Naturelle, Sorbonne Université, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie - UMR 7590 CNRS) F François Robert (Institut Origine et Evolution, Muséum National d’Histoire Naturelle, Sorbonne Université, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie - UMR 7590 CNRS)

Abstract

Contrary to all terrestrial rocks, planets and meteorites exhibit oxygen isotope variations decorrelated with the mass difference of their atomic nuclei. It has been proposed that, in the protosolar nebula (PSN), these variations could result from mass independent isotopic fractionation (MIF) either during specific chemical reactions similar to those responsible for the formation of ozone in the Earth’s atmosphere or during ultraviolet (UV)-photolysis of carbon monoxide (CO) gas in the PSN. However, these potential chemical MIF reactions (Chem-MIFs) are not identified in conditions close to the PSN, and there is no experimental demonstration that large MIF signature can be transferred to solids forming in the PSN. Here, we show that MIFs, up to 60‰ depletion in 16 O, are produced by high-temperature reactions in a plasma during the condensation of carbonaceous solids from a gas containing two of the most abundant PSN molecular species (H 2 O and CH 4 ). This effect is attributed to the formation in the plasma of the activated complex H 2 O 2 * followed by its stabilization by reactions with CH x • radicals. Although it is premature to assert that this reaction represents the main process resulting in MIF of oxygen isotopes in the solar system, our result demonstrates the potential importance of a Chem-MIF effect in a PSN where plasma zones develop.

Article Details

Volume / Issue Vol. 122, Issue 18
Published May 06, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

N

Nathan Asset

Universite Paris-Cite, Institut de Physique du Globe de Paris, CNRS

M

Marc Chaussidon

G

Guillaume Lombardi

Laboratoire des Sciences des Procédés et des Matériaux (LSPM—CNRS), Université Sorbonne Paris Nord

J

Johan Villeneuve

Centre de Recherches Pétrographiques et Géochimiques, CNRS, Université de Lorraine

R

Romain Tartèse

Department of Earth and Environmental Sciences, The University of Manchester

S

Smail Mostefaoui

Institut Origine et Evolution, Muséum National d’Histoire Naturelle, Sorbonne Université, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie - UMR 7590 CNRS

F

François Robert

Institut Origine et Evolution, Muséum National d’Histoire Naturelle, Sorbonne Université, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie - UMR 7590 CNRS