The redox state of the Earth's upper mantle (i.e., oxygen fugacity, f(O2)) is a key variable that influences numerous processes occurring at depth like the mobility of volatile species, partial melting, and metasomatism. It is linked to the oxidation state of peridotite rocks, which is normally determined through the available oxythermobarometers after measuring the chemical composition of equilibrated rock-forming minerals and the Fe3+ in redox-sensitive minerals like spinel or garnet. To date, accurate measurements of Fe3+ / Sigma Fe in peridotites have been limited to those peridotites (e.g., harzburgites and lherzolites) for which an oxythermobarometer exists and where spinel (or garnet) crystals can be easily separated and measured by ...
Redox equilibria in the Earth\u2019s mantle control many chemical and physical processes such as mag...
The uppermost mantle as sampled by xenoliths, peridotite massifs and primitive basaltic melts appear...
Theoretical and planetary studies show that the Earth’s upper mantle is more oxidised than it should...
Publisher's PDFNatural peridotite samples containing olivine, orthopyroxene, and spinel can be used ...
Spinel peridotites from a variety of island arcs have been utilised to calculate the redox state of ...
Oxidation state is a sensitive indicator of geochemical processes within the upper mantle. Here we r...
The oxidation state has been determined for spinel peridotites from 13 orogenic lherzolite massifs i...
Oxygen fugacity (fO2) is an important parameter in determining the relative stabilities of phase ass...
New thermodynamic data for skiagite garnet (Fe3Fe23+Si3O12) are derived from experimental phase-equi...
We have calculated fO_2's and temperatures of various mantle environments worldwide using published ...
The oxidation states of Fe within olivine, orthopyroxene, clinopyroxene, and spinel in a spinel lher...
Oxygen fugacity (fO2) is an important parameter in determining the relative stabilities of phase ass...
The oxygen fugacities (fO2s) recorded by rocks from the Earth's upper mantle have been the subject o...
It is widely known that the oxidation state of the mantle strongly influence phase relations, fluids...
In subduction environments the fluid phases released by the subducting plates are vehicles for the s...
Redox equilibria in the Earth\u2019s mantle control many chemical and physical processes such as mag...
The uppermost mantle as sampled by xenoliths, peridotite massifs and primitive basaltic melts appear...
Theoretical and planetary studies show that the Earth’s upper mantle is more oxidised than it should...
Publisher's PDFNatural peridotite samples containing olivine, orthopyroxene, and spinel can be used ...
Spinel peridotites from a variety of island arcs have been utilised to calculate the redox state of ...
Oxidation state is a sensitive indicator of geochemical processes within the upper mantle. Here we r...
The oxidation state has been determined for spinel peridotites from 13 orogenic lherzolite massifs i...
Oxygen fugacity (fO2) is an important parameter in determining the relative stabilities of phase ass...
New thermodynamic data for skiagite garnet (Fe3Fe23+Si3O12) are derived from experimental phase-equi...
We have calculated fO_2's and temperatures of various mantle environments worldwide using published ...
The oxidation states of Fe within olivine, orthopyroxene, clinopyroxene, and spinel in a spinel lher...
Oxygen fugacity (fO2) is an important parameter in determining the relative stabilities of phase ass...
The oxygen fugacities (fO2s) recorded by rocks from the Earth's upper mantle have been the subject o...
It is widely known that the oxidation state of the mantle strongly influence phase relations, fluids...
In subduction environments the fluid phases released by the subducting plates are vehicles for the s...
Redox equilibria in the Earth\u2019s mantle control many chemical and physical processes such as mag...
The uppermost mantle as sampled by xenoliths, peridotite massifs and primitive basaltic melts appear...
Theoretical and planetary studies show that the Earth’s upper mantle is more oxidised than it should...