Raman quantification factor calibration for CO-CO2 gas mixture in synthetic fluid inclusions: Application to oxygen fugacity calculation in magmatic systems - INSU - Institut national des sciences de l'Univers Accéder directement au contenu
Article Dans Une Revue Chemical Geology Année : 2009

Raman quantification factor calibration for CO-CO2 gas mixture in synthetic fluid inclusions: Application to oxygen fugacity calculation in magmatic systems

Résumé

With a combined approach using Solid State 13C-MAS NMR and Laser Raman Microspectroscopy, we investigated the CO2-CO gas composition (X(CO2)) in fluid inclusions synthesised under high pressure (200-300 MPa), high temperature (1225-1250 °C) and reducing conditions (17 < P(H2) < 62 bars). Fluid inclusions are entrapped in a volatile-bearing basaltic glass which was characterized by FTIR for determining the water solubility (H2Om). 13C-MAS NMR is used as a standard analysis for determining the X(CO2). The Raman quantification factors between 13CO2 and 13CO is determined from peak area (F-factor), peak height (G-factor) and according to the Placzek's polarizability theory. The calibration is derived for both CO2 Fermi diad resonances: 2n2 and n1. We obtain similar values for the main CO2 resonance (2n2) with 1.956 and 1.809 for F and G respectively. Results are consistent with the fact that peak height and area will measure the same quantity. For n1, multiple calibration trends are observed. The different trends are explained by the different 13C/12C ratio observed in between the samples. However, we suggest that such resonance is not suitable for determining the fluid inclusion compositions. We extended the 13C results for calibrating the F- and G-factors for 12CO2-12CO gas mixture in the fluid inclusions and for the main CO2 resonance. For 12CO2-12CO mixture, F and G values are 1.856 and 1.756 which is in the same order as the derived values for 13C species. Thus, we propose that no significant 13C/12C fractionation occurs in the fluid phase and both isotopes will behave in a similar way. Using the derived calibration for 12C and 13C species, the X(CO2) in the fluid phase was recalculated. Results are similar for both isotopes witnessing the similar behaviour of 12C and 13C fluid species during the experiments. The log f(O2) experienced by each sample has been calculated through a thermodynamic approach using 2 independent methods. The log f(O2) calculated from the H2Om in the glass and the X(CO2) in the fluid phase are in good agreement. Large discrepancy is observed for low H2Om content which gives lower log f(O2) value than expected from experimental conditions. Large uncertainties on the H2Om measurements will induce a very approximate value for the log f(O2). This method may not be accurate enough at low H2Om and using the X(CO2) in the fluid phase would therefore provide a better estimate of the log f(O2).
Fichier principal
Vignette du fichier
Reviewed_Y_Morizet.pdf (942.05 Ko) Télécharger le fichier
Origine : Fichiers produits par l'(les) auteur(s)
Loading...

Dates et versions

insu-00371767 , version 1 (01-04-2009)

Identifiants

Citer

Yann Morizet, Michaël Paris, Fabrice Gaillard, Bruno Scaillet. Raman quantification factor calibration for CO-CO2 gas mixture in synthetic fluid inclusions: Application to oxygen fugacity calculation in magmatic systems. Chemical Geology, 2009, 264 (1-4), pp.58-70. ⟨10.1016/j.chemgeo.2009.02.014⟩. ⟨insu-00371767⟩
324 Consultations
832 Téléchargements

Altmetric

Partager

Gmail Facebook X LinkedIn More