Publication Date:
2021
abstract:
The occurrence of phlogopite and amphibole in mantle ultramafc rocks is widely accepted as the
modal efect of metasomatism in the upper mantle. However, their simultaneous formation during
metasomatic events and the related sub-solidus equilibrium with the peridotite has not been
extensively studied. In this work, we discuss the geochemical conditions at which the pargasite-phlogopite assemblage becomes stable, through the investigation of two mantle xenoliths from
Mount Leura (Victoria State, Australia) that bear phlogopite and the phlogopite+ amphibole
(pargasite) pair disseminated in a harzburgite matrix. Combining a mineralogical study
and thermodynamic modelling, we predict that the P-T locus of the equilibrium reaction
pargasite + forsterite =Na-phlogopite+ 2 diopside + spinel, over the range 1.3-3.0 GPa/540-1500 K,
yields a negative Clapeyron slope of -0.003 GPa K-1 (on average). The intersection of the P-T locus
of supposed equilibrium with the new mantle geotherm calculated in this work allowed us to state
that the Mount Leura xenoliths achieved equilibrium at 2.3 GPa /1190 K, that represents a plausible
depth of ~ 70 km. Metasomatic K-Na-OH rich fuids stabilize hydrous phases. This has been modelled
by the following equilibrium equation: 2 (K,Na)-phlogopite+ forsterite = 7/2 enstatite + spinel +fuid
(components: Na2O,K2O,H2O). Using quantum-mechanics, semi-empirical potentials, lattice
dynamics and observed thermo-elastic data, we concluded that K-Na-OH rich fuids are not efective
metasomatic agents to convey alkali species across the upper mantle, as the fuids are highly
reactive with the ultramafc system and favour the rapid formation of phlogopite and amphibole.
In addition, oxygen fugacity estimates of the Mount Leura mantle xenoliths [?(FMQ)= -1.97 ± 0.35;
-1.83 ± 0.36] indicate a more reducing mantle environment than what is expected from the occurrence
of phlogopite and amphibole in spinel-bearing peridotites. This is accounted for by our model of full
molecular dissociation of the fuid and incorporation of the O-H-K-Na species into (OH)-K-Na-bearing
mineral phases (phlogopite and amphibole), that leads to a peridotite metasomatized ambient
characterized by reduced oxygen fugacity.
Iris type:
01.01 Articolo in rivista
Keywords:
phlogopite-pargasite
List of contributors:
Bonadiman, Costanza; Brombin, Valentina
Published in: