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Systematic laboratory approach to produce Mg-rich carbonates at low temperature

Dolomite is a common Mg-rich carbonate in the geological record, but the mechanism of its formation remains unclear. At low temperature, the incorporation of magnesium ions into the carbonate minerals necessary to form dolomite is kinetically inhibited. Over the decades, several factors that possibl...

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Autores principales: Al Disi, Zulfa Ali, Zouari, Nabil, Attia, Essam, Al-Asali, Mazen, Al Saad Al-Kuwari, Hamad, Sadooni, Fadhil, Dittrich, Maria, Bontognali, Tomaso R. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043586/
https://www.ncbi.nlm.nih.gov/pubmed/35496424
http://dx.doi.org/10.1039/d1ra06206a
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author Al Disi, Zulfa Ali
Zouari, Nabil
Attia, Essam
Al-Asali, Mazen
Al Saad Al-Kuwari, Hamad
Sadooni, Fadhil
Dittrich, Maria
Bontognali, Tomaso R. R.
author_facet Al Disi, Zulfa Ali
Zouari, Nabil
Attia, Essam
Al-Asali, Mazen
Al Saad Al-Kuwari, Hamad
Sadooni, Fadhil
Dittrich, Maria
Bontognali, Tomaso R. R.
author_sort Al Disi, Zulfa Ali
collection PubMed
description Dolomite is a common Mg-rich carbonate in the geological record, but the mechanism of its formation remains unclear. At low temperature, the incorporation of magnesium ions into the carbonate minerals necessary to form dolomite is kinetically inhibited. Over the decades, several factors that possibly allow for overcoming this kinetic barrier have been proposed, and their effectiveness debated. Here, we present the results of a large number of laboratory precipitation experiments that have been designed to identify and compare the factors that promote the formation of Mg-rich carbonates. Under the tested conditions, the most interesting observations include: (1) from solutions that mimic evaporitic seawater, the maximum mol% of Mg incorporated in high Mg calcite is 35, (2) carbonates with a mol% of Mg above 40 were obtained exclusively in the presence of organic molecules, (3) no correlation was observed between the charge of the organic molecules and the incorporation of Mg, (4) the mode (i.e., slow vs. fast mixing) used to add carbonate to the solution obtaining supersaturation has a significant impact on the forming mineral phase (aragonite vs. nesquehonite vs. high Mg calcite) and its Mg content. These findings allow for a more informed evaluation of the existing models for dolomite formation, which are based on the study of natural environments and ancient sedimentary sequences.
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spelling pubmed-90435862022-04-28 Systematic laboratory approach to produce Mg-rich carbonates at low temperature Al Disi, Zulfa Ali Zouari, Nabil Attia, Essam Al-Asali, Mazen Al Saad Al-Kuwari, Hamad Sadooni, Fadhil Dittrich, Maria Bontognali, Tomaso R. R. RSC Adv Chemistry Dolomite is a common Mg-rich carbonate in the geological record, but the mechanism of its formation remains unclear. At low temperature, the incorporation of magnesium ions into the carbonate minerals necessary to form dolomite is kinetically inhibited. Over the decades, several factors that possibly allow for overcoming this kinetic barrier have been proposed, and their effectiveness debated. Here, we present the results of a large number of laboratory precipitation experiments that have been designed to identify and compare the factors that promote the formation of Mg-rich carbonates. Under the tested conditions, the most interesting observations include: (1) from solutions that mimic evaporitic seawater, the maximum mol% of Mg incorporated in high Mg calcite is 35, (2) carbonates with a mol% of Mg above 40 were obtained exclusively in the presence of organic molecules, (3) no correlation was observed between the charge of the organic molecules and the incorporation of Mg, (4) the mode (i.e., slow vs. fast mixing) used to add carbonate to the solution obtaining supersaturation has a significant impact on the forming mineral phase (aragonite vs. nesquehonite vs. high Mg calcite) and its Mg content. These findings allow for a more informed evaluation of the existing models for dolomite formation, which are based on the study of natural environments and ancient sedimentary sequences. The Royal Society of Chemistry 2021-11-18 /pmc/articles/PMC9043586/ /pubmed/35496424 http://dx.doi.org/10.1039/d1ra06206a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Al Disi, Zulfa Ali
Zouari, Nabil
Attia, Essam
Al-Asali, Mazen
Al Saad Al-Kuwari, Hamad
Sadooni, Fadhil
Dittrich, Maria
Bontognali, Tomaso R. R.
Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title_full Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title_fullStr Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title_full_unstemmed Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title_short Systematic laboratory approach to produce Mg-rich carbonates at low temperature
title_sort systematic laboratory approach to produce mg-rich carbonates at low temperature
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043586/
https://www.ncbi.nlm.nih.gov/pubmed/35496424
http://dx.doi.org/10.1039/d1ra06206a
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