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CaCO3 phase diagram studied with Raman spectroscopy at pressures up to 50 GPa and high temperatures and DFT modeling

机译:CaCO3相图采用拉曼光谱研究,压力高达50 GPA和高温和DFT建模

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摘要

We revise the high pressure, high temperature phase diagram of CaCO3 using Raman spectroscopy in conjunction with laser heated diamond anvil cell experiments. We confirm numerous aspects of earlier studies, including a recent X-ray diffraction study about the stability field of CaCO3-VII. Our Raman results show that CaCO3-VII is stable in the lower mantle at a depth of 690-1010 km. Our DFT calculations show that the phase transition from aragonite to CaCO3-VII at approximate to 25 GPa and from CaCO3-VII to post-aragonite at approximate to 40 GPa are accompanied by density changes of 2% and 3.5%, respectively. Shear sound velocities change by 9% and -12% across the transitions, respectively. Hence, a sufficient amount, at least locally, of CaCO3 in the Earth's mantle can be detectable by an increase of the shear velocity at 690 km and a decrease of the shear velocity at 1010 km depths.
机译:使用拉曼光谱与激光加热的金刚石砧型实验结合使用拉曼光谱来修改CaCO3的高压,高温相图。 我们确认了早期研究的许多方面,包括关于CaCO3-VII稳定场的最近X射线衍射研究。 我们的拉曼结果表明,Caco3-VII在较低的地幔中稳定,深度为690-1010公里。 我们的DFT计算表明,从近似的25GPa和从CaCO 3-VII近似的Arago3-VII的相转变为近似为40GPa的后吡啶物,分别伴有2%和3.5%的密度变化。 剪切声速度分别在过渡时变为9%和-12%。 因此,可以通过在690km处的剪切速度增加并且在1010km深度下的剪切速度下降并在1010km深度下的剪切速度增加来检测到地球罩中的足量。

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