English

Structures and stability of calcium and magnesium carbonates at mantle pressures

Materials Science 2015-06-22 v1

Abstract

Ab initio random structure searching (AIRSS) and density functional theory methods are used to predict structures of calcium and magnesium carbonate (CaCO3_3 and MgCO3_3) at high pressures. We find a previously unknown CaCO3_3 structure which is more stable than the aragonite and "post aragonite" phases in the range 32--48 GPa. At pressures from 67 GPa to well over 100 GPa the most stable phase is a previously unknown CaCO3_3 structure of the pyroxene type with fourfold coordinated carbon atoms. We also predict a stable structure of MgCO3_3 in the range 85--101 GPa. Our results lead to a revision of the phase diagram of CaCO3_3 over more than half the pressure range encountered within the Earth's mantle, and smaller changes to the phase diagram of MgCO3_3. We predict CaCO3_3 to be more stable than MgCO3_3 in the Earth's mantle above 100 GPa, and that CO2_2 is not a thermodynamically stable compound under deep mantle conditions. Our results have significant implications for understanding the Earth's deep carbon cycle.

Keywords

Cite

@article{arxiv.1407.3369,
  title  = {Structures and stability of calcium and magnesium carbonates at mantle pressures},
  author = {Chris J. Pickard and Richard J. Needs},
  journal= {arXiv preprint arXiv:1407.3369},
  year   = {2015}
}

Comments

6 pages, 8 figures