Magnesite formation from MgO and CO2 at the pressures and temperatures of Earth’s mantle
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- Type
- article
- Published
- 2013-07-01
- Cited by
- 22
- References
- 66
- OpenAlex
- https://openalex.org/W2076891376
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:21680915
Keywords
Magnesite, Mantle (geology), Geology, Earth (classical element), Geochemistry
References
- Carbonatites : genesis and evolution
- The stability of magnesite in the transition zone and the lower mantle as function of oxygen fugacity
- The equation of state and high-pressure behavior of magnesite
- Specific volume measurements of Cu, Mo, Pd, and Ag and calibration of the ruby R1 fluorescence pressure gauge from 0.06 to 1 Mbar
- The role of the global carbonate cycle in the regulation and evolution of the Earth system
- In situ high P-T Raman spectroscopy and laser heating of carbon dioxide.
- Polymerization of Carbon Dioxide: A Chemistry View of Molecular-to-Nonmolecular Phase Transitions
- Mafic magma recharge supplies high CO2 and SO2 gas fluxes from Popocatépetl volcano, Mexico
- Probing the magma plumbing of Erebus volcano, Antarctica, by open-path FTIR spectroscopy of gas emissions
- Melting curve and fluid equation of state of carbon dioxide at high pressure and high temperature.
- Thermal equation of state of magnesite to 32 GPa and 2073 K
- Evidence for carbonate in the mantle
- Crystal structure of carbon dioxide at high pressure : "Superhard" polymeric carbon dioxide
- Two-dimensional detector software: From real detector to idealised image or two-theta scan
- Experimental investigation of silicate-carbonate system at high pressure and high temperature
- Stability of magnesite and its high-pressure form in the lowermost mantle
- Simultaneous estimation of the form factor and structure factor for globular particles in small‐angle scattering
- Phase diagram of carbon dioxide: update and challenges
- Decarbonation reaction of magnesite in subducting slabs at the lower mantle
- Carbonate-silicate reactions at high presures and possible presence of dolomite and magnesite in the upper mantle
Cited by
- Structures and energetics of (MgCO3)n clusters (n ≤ 16).
- A primary natrocarbonatitic association in the Deep Earth
- In situ synchrotron X-ray diffraction in the laser-heated diamond anvil cell: Melting phenomena and synthesis of new materials
- Melting and decomposition of MgCO3 at pressures up to 84 GPa
- Chemistry and Mineralogy of Earth’s Mantle. Experimental determination of melting in the systems enstatite-magnesite and magnesite-calcite from 15 to 80 GPa
- Single-crystal elasticity of the deep-mantle magnesite at high pressure and temperature
- Unraveling the complexity of iron oxides at high pressure and temperature: Synthesis of Fe5O6
- CARBONATITIC INCLUSIONS IN DEEP MANTLE DIAMOND FROM JUINA, BRAZIL: NEW MINERALS IN THE CARBONATE-HALIDE ASSOCIATION
- An examination of the reactivity of CO2 with Mg-silicates at pressures and temperatures of the earth's mantle and implications for deep carbon storage
- Polymeric phase V of carbon dioxide has not been recovered at ambient pressure and has a unique structure
- CO2 reduction-conversion to precipitates and morphological control through the application of the mineral carbonation mechanism
- Thorium-poor monazite and columbite-(Fe) mineralization in the Gleibat Lafhouda carbonatite and its associated iron-oxide-apatite deposit of the Ouled Dlim Massif, South Morocco
- Critical Assessment of the Mineralogical Collections at Uppsala University using Raman Spectroscopy
- Carbon Dioxide under Earth Mantle Conditions: From a Molecular Liquid through a Reactive Fluid to Polymeric Regimes.
- Thermal properties and stability of reactive magnesia cement
- Anhydrous MgCO3: Controllable synthesis of various morphology based on hydrothermal carbonization
- A Comprehensive Review of High-Pressure Laser-Induced Materials Processing, Part III: Laser Reactive Synthesis within Diamond Anvil Cells
- CO2 Mineralization by MgO Nanocubes in Nanometric Water Films
- High-pressure fluid-phase equilibria: Experimental methods, developments and systems investigated (2013–2016)
- In Situ Determination of Thermoelastic Properties of Magnesite at High Pressure and Temperature With Implications to Seismic Detectability of Moderately Carbonated Lithologies in the Earth's Mantle
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