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Non-destructive analysis of a mixed H2O-CO2 fluid in experimental noble-metal capsule by means of freezing and high-energy synchrotron X-ray diffraction

Academic Article
Publication Date:
2022
Citation:
Non-destructive analysis of a mixed H2O-CO2 fluid in experimental noble-metal capsule by means of freezing and high-energy synchrotron X-ray diffraction / S. Tumiati, M. Merlini, A. Amalfa, M. Di Michiel, L. Toffolo. - In: SCIENTIFIC REPORTS. - ISSN 2045-2322. - 12:1(2022), pp. 20240.1-20240.8. [10.1038/s41598-022-24224-3]
abstract:
High-pressure high-temperature syntheses that involve volatile-bearing aqueous fluids are typically accomplished by enclosing the samples in gas-tight welded shut noble-metal capsules, from which the bulk volatile content must be extracted to be analyzed with mass spectroscopy, hence making the analysis non-replicable. Here we describe a novel non-destructive method that ensures the identification and the quantitative estimate of the volatiles directly in the sealed capsule, focusing on fluid H2O-CO2 mixtures equilibrated with graphite at conditions of geological interest (1 GPa, 800 °C). We used a high-energy (77 keV) synchrotron X-ray radiation combined with a cryostat to produce X-ray diffraction patterns and X-ray diffraction microtomographic cross-sections of the volatile-bearing samples down to -180 °C, thus encompassing the conditions at which crystalline phases-solid CO2 and clathrate (CO2 hydrate)-form. The uncertainty of the method is < 15 mol%, which reflects the difference between the volatile proportion estimated by both Rietveld refinement of the diffraction data and by image analysis of the microtomograms, and the reference value measured by quadrupole mass spectrometry. Therefore, our method can be reliably applied to the analysis of frozen H2O-CO2 mixtures and, moreover, has the potential to be extended to experimental fluids of geological interest containing other volatiles, such as CH4, SO2 and H2S.
IRIS type:
01 - Articolo su periodico
List of contributors:
S. Tumiati, M. Merlini, A. Amalfa, M. Di Michiel, L. Toffolo
Authors of the University:
MERLINI MARCO ( author )
TUMIATI SIMONE ( author )
Link to information sheet:
https://air.unimi.it/handle/2434/946944
Full Text:
https://air.unimi.it/retrieve/handle/2434/946944/2103388/Tumiati%20et%20al%202022%20sci%20rep.pdf
Project:
The Dynamic Mass Transfer from Slabs to Arcs (Dynastar)
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Research Areas

Concepts (2)


Settore GEO/06 - Mineralogia

Settore GEO/07 - Petrologia e Petrografia
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