Very-low-grade phyllosilicates in the Aravis massif (Haute-Savoie, France) and the di-trioctahedral substitution in chlorite
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Published:2023-10-04
Issue:5
Volume:35
Page:831-844
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ISSN:1617-4011
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Container-title:European Journal of Mineralogy
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language:en
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Short-container-title:Eur. J. Mineral.
Author:
Dubacq BenoîtORCID, Bonnet GuillaumeORCID, Warembourg Manon, Baptiste Benoît
Abstract
Abstract. Very-low-grade mineral veins investigated in the impure limestone massif of
the Aravis (Haute-Savoie, France) yielded a rich mineral assemblage typified
by dolomite, calcite, quartz, illitic mica, fluorite and three types of
chlorite. The vein network extends over more than 5 km and was
probably emplaced around peak burial of the limestone (∼7 km
depth, 190 ∘C). The mineralogy has been investigated with electron
microscopy, mass spectrometry and X-ray diffraction, with emphasis on
chlorite types. The first chlorite type is a chamosite often interlayered
with illitic mica. The second type is a Mg-rich, Al-depleted cookeite. The
third type is a Li-rich sudoite. Presence of the three chlorite types shows
limited solubility between di-trioctahedral chlorite phase components
(sudoite and cookeite) and with tri-trioctahedral chlorite (chamosite).
Departure of the Li-rich sudoite and Mg-rich cookeite from the ideal
end-member compositions suggests solid solutions towards a Li-sudoite
component. The associated illitic mica does not contain Li in significant
proportion but shows pyrophyllitic and di-trioctahedral substitution,
without a Tschermak component. These results call for systematic studies of
the Li content of chlorite and for better modelling of di-trioctahedral
substitution in chlorite and mica.
Publisher
Copernicus GmbH
Subject
Pulmonary and Respiratory Medicine,Pediatrics, Perinatology and Child Health
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