Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

Ab Initio Thermodynamic Model for Magnesium Carbonates and Hydrates

Journal Article · · Journal of Physical Chemistry A, 118(35):7469-7488
DOI:https://doi.org/10.1021/jp500271n· OSTI ID:1158956

An ab initio thermodynamic framework for predicting properties of hydrated magnesium carbonate minerals has been developed using density-functional theory linked to macroscopic thermodynamics through the experimental chemical potentials for MgO, water, and CO2. Including semiempirical dispersion via the Grimme method and small corrections to the generalized gradient approximation of Perdew, Burke, and Ernzerhof for the heat of formation yields a model with quantitative agreement for the benchmark minerals brucite, magnesite, nesquehonite, and hydromagnesite. The model shows how small differences in experimental conditions determine whether nesquehonite, hydromagnesite, or magnesite is the result of laboratory synthesis from carbonation of brucite, and what transformations are expected to occur on geological time scales. Because of the reliance on parameter-free first principles methods, the model is reliably extensible to experimental conditions not readily accessible to experiment and to any mineral composition for which the structure is known or can be hypothesized, including structures containing defects, substitutions, or transitional structures during solid state transformations induced by temperature changes or processes such as water, CO2, or O2 diffusion. Demonstrated applications of the ab initio thermodynamic framework include an independent means to evaluate differences in thermodynamic data for lansfordite, predicting the properties of Mg analogs of Ca-based hydrated carbonates monohydrocalcite and ikaite which have not been observed in nature, and an estimation of the thermodynamics of barringtonite from the stoichiometry and a single experimental observation.

Research Organization:
Pacific Northwest National Laboratory (PNNL), Richland, WA (US), Environmental Molecular Sciences Laboratory (EMSL)
Sponsoring Organization:
USDOE
DOE Contract Number:
AC05-76RL01830
OSTI ID:
1158956
Report Number(s):
PNNL-SA-101712; 47824; KC0302060
Journal Information:
Journal of Physical Chemistry A, 118(35):7469-7488, Journal Name: Journal of Physical Chemistry A, 118(35):7469-7488
Country of Publication:
United States
Language:
English

Similar Records

Ab initio thermodynamics of magnesium carbonates and hydrates in water-saturated supercritical CO2 and CO2-rich regions
Journal Article · Thu Sep 15 00:00:00 EDT 2016 · Chemical Geology · OSTI ID:1688450

Quantifying the Impact of Magnesium on the Stability and Water Binding Energy of Hydrated Calcium Carbonates by ab initio Thermodynamics
Journal Article · Thu Apr 04 00:00:00 EDT 2019 · Journal of Physical Chemistry A · OSTI ID:1525109

In Situ Infrared Spectroscopic Study of Brucite Carbonation in Dry to Water-Saturated Supercritical Carbon Dioxide
Journal Article · Wed Apr 25 00:00:00 EDT 2012 · The Journal of Physical Chemistry Letters, 116(19):4768-4777 · OSTI ID:1040957