2001•American MineralogistRequires access

Phase relations of CaCO 3 at high pressure and high temperature

Kaichi Suito, Junpei Namba, Takashi Horikawa, Yozo Taniguchi, Noriko Sakurai, Michihiro Kobayashi, Akifumi Onodera, Osamu Shimomura, Takumi Kikegawa

Open publisher page 176 citations

Abstract

Phase transitions in calcite, a naturally occurring crystalline form of CaCO 3 , have been investigated by three different experimental techniques: (1) in-situ X-ray diffraction (XRD) using synchrotron radiation to 6 GPa and 1750 °C in a cubic anvil press; (2) Raman scattering to 10 GPa at room temperature using a diamond-anvil cell; and (3) post-compression XRD on samples retrieved after heat treatment at temperatures to 2000 °C and pressures to 9 GPa in an octahedral anvil press. At room temperature, calcite I transformed into calcite II at 1.7 GPa and then to calcite III at ~2 GPa. Calcite III persisted to at least 10 GPa. Elevation of temperature at 3, 4, and 6 GPa caused a sequence of transitions: calcite III → aragonite → disordered calcite → liquid, and aragonite was retained upon rapid cooling of the liquid. The melting curve of disordered calcite increased with pressure following a relation: T m (°C) = 1338 + 82 P - 2.9 P 2 where P is in units of GPa.

About this research paper

What this paper is about

Phase transitions in calcite, a naturally occurring crystalline form of CaCO 3 , have been investigated by three different experimental techniques: (1) in-situ X-ray diffraction (XRD) using synchrotron radiation to 6 GPa and 1750 °C in a cubic anvil press; (2) Raman scattering to 10 GPa at room temperature using a diamond-anvil cell; and (3) post-compression XRD on samples retrieved after heat treatment at temperatures to 2000 °C and pressures to 9 GPa in an octahedral anvil press. At room temperature, calcite I transformed into calcite II at 1.7 GPa and then to calcite III at ~2 GPa. Calcite III persisted to at least 10 GPa. Elevation of temperature at 3, 4, and 6 GPa caused a sequence of transitions: calcite III → aragonite → disordered calcite → liquid, and aragonite was retained upon rapid cooling of the liquid. The melting curve of disordered calcite increased with pressure following a relation: T m (°C) = 1338 + 82 P - 2.9 P 2 where P is in units of GPa.

Why it matters

OpenAlex reports 176 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Phase transitions in calcite, a naturally occurring crystalline form of CaCO 3 , have been investigated by three different experimental techniques: (1) in-situ X-ray diffraction (XRD) using synchrotron radiation to 6 GPa and 1750 °C in a cubic anvil press; (2) Raman scattering to 10 GPa at room temperature using a diamond-anvil cell; and (3) post-compression XRD on samples retrieved after heat treatment at temperatures to 2000 °C and pressures to 9 GPa in an octahedral anvil press. At room temperature, calcite I transformed into calcite II at 1.7 GPa and then to calcite III at ~2 GPa. Calcite III persisted to at least 10 GPa. Elevation of temperature at 3, 4, and 6 GPa caused a sequence of transitions: calcite III → aragonite → disordered calcite → liquid, and aragonite was retained upon rapid cooling of the liquid. The melting curve of disordered calcite increased with pressure following a relation: T m (°C) = 1338 + 82 P - 2.9 P 2 where P is in units of GPa.

Key concepts: Calcite, Diamond anvil cell, Aragonite, Mineralogy, Crystallography, Phase (matter), Mineral, Raman spectroscopy

Related papers

Back to paper searchBrowse research topicsOriginal source
Phase relations of CaCO 3 at high pressure and high temperature — Research Paper | ScholarLens