wollastonite;
breyite;
perovskite;
larnite;
mantle;
density functional theory;
quasi-harmonic approximation;
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摘要:
Phase relations in one of the key petrological systems, CaSiO3, have been comprehensively investigated for the first time in the pressure range 0–100 GPa and temperatures 0–2500 K within the density functional theory using the method of lattice dynamics in the quasi-harmonic approximation. The results showed that at atmospheric pressure and 0 K CaSiO3 is stable in the wollastonite structure, which above 1250 K transforms to the high-temperature pseudowollastonite modification. Above a pressure of 4 GPa, CaSiO3 is stable in the breyite structure. The phase equilibrium curve has a negative slope of dP/dT = –0.6 MPa/K. At 8 GPa, CaSiO3 decomposes into an assemblage of Ca2SiO4-larnite and titanite-structured CaSi2O5. The phase equilibrium curve has a positive slope of dP/dT = 1.35 MPa/K. At a pressure of 13 GPa, Ca2SiO4-larnite reacts with CaSi2O5, forming a phase with a perovskite-like structure – CaSiO3-perovskite. The pressure of this phase transition is practically independent of temperature. In the low-temperature region, Ca-perovskite is stable in the tetragonal modification CaSiO3-I4/mcm. Above 340 K at 13 GPa, Ca-perovskite is stable in the cubic modification CaSiO3-\documentclass[12pt]{minimal}
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\begin{document}$$Pm\bar {3}m.$$\end{document} The phase transition temperature increases to 755 K with pressure increase to 100 GPa. The thermodynamic parameters were also calculated for the first time for wollastonite, pseudowollastonite, and titanite-structured CaSi2O5.
机构:
Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Liu, Zhaodong
Irifune, Tetsuo
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Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Tokyo Inst Technol, ELSI, Tokyo, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Irifune, Tetsuo
Nishi, Masayuki
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Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Tokyo Inst Technol, ELSI, Tokyo, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Nishi, Masayuki
Tange, Yoshinori
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Tokyo Inst Technol, ELSI, Tokyo, Japan
Japan Synchrotron Radiat Inst, Spring 8, Sayo, Hyogo, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Tange, Yoshinori
Arimoto, Takeshi
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Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan
Arimoto, Takeshi
Shinmei, Toru
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Ehime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, JapanEhime Univ, Geodynam Res Ctr, Matsuyama, Ehime 7908577, Japan