English

Anomalous thermal properties and spin crossover of ferromagnesite (Mg,Fe)CO3

Materials Science 2022-05-20 v2 Geophysics

Abstract

Ferromagnesite (Mg,Fe)CO3, also referred to as magnesiosiderite at high iron concentration, is a solid solution of magnesite (MgCO3) and siderite (FeCO3). Ferromagnesite is believed to enter the Earth's lower mantle via subduction and is considered a major carbon carrier in the Earth's lower mantle, playing a key role in the Earth's deep carbon cycle. Experiments have shown that ferromagnesite undergoes a pressure-induced spin crossover, accompanied by volume and elastic anomalies, in the lower-mantle pressure range. In this work, we investigate thermal properties of (Mg,Fe)CO3 using first-principles calculations. We show that nearly all thermal properties of ferromagnesite are drastically altered by iron spin crossover, including anomalous reduction of volume, anomalous softening of bulk modulus, and anomalous increases of thermal expansion, heat capacity, and Guneisen parameter. Remarkably, the anomaly of heat capacity remains prominent (up to 40%) at high temperature without smearing out, which suggests that iron spin crossover may significantly affect the thermal properties of subducting slabs and the Earth's deep carbon cycle.

Keywords

Cite

@article{arxiv.2010.07720,
  title  = {Anomalous thermal properties and spin crossover of ferromagnesite (Mg,Fe)CO3},
  author = {Han Hsu and Christian P. Crisostomo and Wenzhong Wang and Zhongqing Wu},
  journal= {arXiv preprint arXiv:2010.07720},
  year   = {2022}
}

Comments

Main text: 24 pages and 8 figures; Supplemental Material: 8 pages, 3 tables, and 1 figure