In Situ Quantification of Carbonate Species Concentrations, pH, and pCO2 in Calcite Fluid Inclusions Using Confocal Raman Spectroscopy

Author:

Hudgins Michael Naylor123ORCID,Knobbe Todd K.1,Hubbard Julia1,Steele Andrew4,Park Justin G.123,Schaller Morgan F.123

Affiliation:

1. Department of Earth and Environmental Sciences, Rensselaer Polytechnic Institute, Jonsson Rowland Science Center, Troy, New York, USA

2. Center for Environmental Stable Isotope Analysis, Rensselaer Polytechnic Institute, Jonsson Rowland Science Center, Troy, New York, USA

3. Rensselaer Astrobiology Research and Education Center, Rensselaer Polytechnic Institute, Jonsson Rowland Science Center, Troy, New York, USA

4. Earth and Planets Laboratory, Carnegie Institution for Science, Washington, DC, USA

Abstract

Carbonate minerals are globally distributed on the modern and ancient Earth and are abundant in terrestrial and marine depositional environments. Fluid inclusions hosted by calcite retain primary signatures of the source fluid geochemistry at the time of mineral formation (i.e., pCO2) and can be used to reconstruct paleoenvironments. Confocal laser Raman spectroscopy provides a quick, nondestructive approach to measuring the constituents of fluid inclusions in carbonates and is a reliable method for qualitatively determining composition in both the aqueous and gas phases. Here, we demonstrate a method for accurately quantifying bicarbonate and carbonate ion concentrations (down to 20 mM) and pH (7–11) from calcite fluid inclusions using confocal Raman spectroscopy. Instrument calibrations for carbonate (CO32–) and bicarbonate (HCO3) concentrations and pH were performed using stock solutions. We show that the calcite host mineral does not affect the accurate quantification of carbonate solution concentrations and that these parameters can be used to estimate the pH and pCO2 of a solution entrapped within a fluid inclusion. We apply the technique to Icelandic spar calcite and find a [CO32–] = 0.11, [HCO3] = 0.17, pH = 10.1, and CO2 parts per million = 2217. The presence of gaseous Raman bands for CO2, CH4, and H2S suggests that the mineral precipitated in a reducing environment.

Funder

NASA Earth First Origins

Publisher

SAGE Publications

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