Hydrogen in nominally anhydrous upper-mantle minerals concentration levels and implications
Jannick Ingrin,Henrik Skogby +1 more
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TL;DR: In this article, it was shown that hydrogen saturation in the upper mantle is highly unprobable and that the maximum average amount of hydrogen stored in the nominally anhydrous minerals of the upper manifold is around 600 ppm H 2 O.
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Abstract: Several of the supposedly anhydrous major minerals of the upper mantle have been shown to regularly contain small amounts of hydrogen. The concentrations measured in the most important minerals obtained from mantle xenoliths are, expressed in ppm H 2 O, 100-1300 for clinopyroxene, 60-650 for orthopyroxene, 0- 140 for olivine and 1-200 for garnet. Hydrogen is normally structurally incorporated as hydroxyl ions, and in many cases the hydrogen ions seem to act as charge compensators associated with point defects, such as metal vacancies or substitution by mono- or trivalent cations. The determination of the exact amount of hydrogen stored in these nominally anhydrous upper mantle minerals is a key-step toward quantification of the water content of the mantle, as well as understanding of its internal water cycle. For instance, a concentration of 100 ppm H 2 O homogeneously distributed within the upper mantle above 410 km depth is approximately equivalent to a 100 m water layer at the Earth9s surface. However, the relatively fast kinetics of dehydrogenation with concomitant oxidation of iron within these minerals, implies that hydrogen as well as Fe 3+ concentrations in equilibrium with mantle conditions might be different from those measured from recovered xenolith samples. High-pressure experimental measurements of hydrogen solubility as a function of PH 2 O show a trend similar to the hydrogen contents of natural samples, with hydrogen saturation levels that decrease following the mineral series: diopside > enstatite > olivine > pyrope. Except pyrope, these minerals may incorporate more than 1000 ppm H 2 O. Based on recent data of water solubility, stability and partitioning, we suggest that an entire upper mantle saturated in hydrogen is highly unprobable and that the maximum average amount of hydrogen stored in the nominally anhydrous minerals of the upper mantle is around 600 ppm H 2 O. Despite the important progress achieved during the last years, our knowledge of the concentration of hydrogen stored as point defects in the mantle above 410 km is still too poorly constrained. The importance of nominally anhydrous minerals for the water budget of the upper mantle is now well established but still awaits complete quantification.
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Citations
Hydroxyl in omphacites and omphacitic clinopyroxenes of upper mantle to lower crustal origin beneath the Siberian platform
TL;DR: A series of clinopyroxenes from the lower crust and upper mantle beneath the Siberian platform was investigated by Fourier transform infrared (FTIR) spectroscopy and transmission electron microscopy (TEM) as discussed by the authors.
Hydrogen incorporation and the oxidation state of iron in ringwoodite: A spectroscopic study
Maria Mrosko,Stephan Lenz,Catherine McCammon,Michail N. Taran,Richard Wirth,Monika Koch-Müller +5 more
TL;DR: In this article, the incorporation of hydrogen and iron in ringwoodite was studied using Fourier transform infrared (FTIR), Mossbauer (MB), ultraviolet-visible (UV-VIS), and electron energy loss (EEL) spectroscopy.
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TL;DR: Trace-element concentrations in olivine and coexisting garnets included in diamonds from the Akwatia Mine (Ghana, West African Craton) were measured to show that olivines can provide similar information about equilibration temperature, diamond paragenesis and mantle processes as garnet as mentioned in this paper.
Hydrogen Partitioning Between Olivine and Orthopyroxene: Implications for the Lithosphere‐Asthenosphere Structure
Lei Kang,Shun-ichiro Karato +1 more
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TL;DR: In this paper , the authors determined the hydrogen solubility in olivine and orthopyroxene under water-saturated conditions at P = 3-5 GPa and T = 1373-1573 K. They found that the partition coefficient depends weakly on temperature but strongly on pressure and water fugacity.
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TL;DR: A review on the effects of water on the rheology of dominant minerals (clinopyroxene, plagioclase and garnet) and rocks in the continental lower crust is provided in this paper.
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David R. Bell,George R. Rossman +1 more
TL;DR: Nominally anhydrous minerals constitute a significant reservoir for mantle hydrogen, possibly accommodating all water in the depleted mantle and providing a possible mechanism to recycle water from Earth's surface into the deep mantle.
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Rheology of synthetic olivine aggregates: Influence of grain size and water
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