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Raman spectroscopy of Ryugu particles and their extracted residues: Fluorescence background characteristics and similarities to CI chondrites.

Authors :
Komatsu, Mutsumi
Yabuta, Hikaru
Kebukawa, Yoko
Bonal, Lydie
Quirico, Eric
Fagan, Timothy J.
Cody, George D.
Barosch, Jens
Bejach, Laure
Dartois, Emmanuel
Dazzi, Alexandre
De Gregorio, Bradley
Deniset‐Besseau, Ariane
Duprat, Jean
Engrand, Cecile
Hashiguchi, Minako
Martins, Zita
Mathurin, Jérémie
Montagnac, Gilles
Mostefaoui, Smail
Source :
Meteoritics & Planetary Science; Aug2024, Vol. 59 Issue 8, p2166-2185, 20p
Publication Year :
2024

Abstract

We present here an investigation of Ryugu particles recovered by the Hayabusa2 space mission and their extracted carbonaceous acid residues using Raman spectroscopy. Raman parameters of Ryugu intact grains and their acid residues are characterized by broad D (defect induced) and G (graphite) band widths, indicating the presence of polyaromatic carbonaceous matter with low thermal maturity. Raman spectra of Ryugu particles and CI (type 1) chondrites exhibit stronger laser‐induced fluorescence backgrounds compared to Type 2 and Type 3 carbonaceous chondrites. The high fluorescence signatures and wide bandwidths of the D and G bands of Ryugu intact grains are similar to the Raman spectra observed in CI chondrites, reflecting the low structural order of their aromatic carbonaceous matter, and strengthening the link between Ryugu particles and CI chondrites. The high fluorescence background intensity of the Ryugu particles is due to multiple causes, but it is likely that the relative abundance of geometry‐bearing macromolecular organic matter in total organic carbon contents makes a large contribution to the fluorescence intensities. Locally observed high fluorescence in the acid‐extracted residues of Ryugu is due to nitrogen‐bearing outlier phase. The high fluorescence signature is one consequence of the low degree of thermal maturity of the organic matter and supports evidence that the Ryugu particles have escaped significant parent body thermal metamorphism. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10869379
Volume :
59
Issue :
8
Database :
Complementary Index
Journal :
Meteoritics & Planetary Science
Publication Type :
Academic Journal
Accession number :
179045680
Full Text :
https://doi.org/10.1111/maps.14234