2017Crystal Growth & DesignRequires access

Role of Brucite Dissolution in Calcium Carbonate Precipitation from Artificial and Natural Seawaters

Dang Dan Nguyen, Stéphanie Gascoin, Alaric Zanibellato, Cosmelina G. Da Silva, Mélanie Lemoine, Benoît Riffault, R. Sabot, Marc Jeannin, Daniel Chateigner, Otávio Gil

Open publisher page 35 citations

Abstract

Brucite is often associated with calcium carbonate in calcareous scales. In this study, we focus on the effects of brucite dissolution on the carbonate precipitation. Brucite-saturated solutions are elaborated by adding the same amount of brucite powder in various volumes of different natural and artificial seawaters (natural organic materials are also added, with or without Mg 2+ ions). The Mg 2+ and Ca 2+ concentrations in seawater at the beginning and end of the experiments are determined by ICP-AES. The solid powders are ex-situ analyzed using XRD and SEM. It is observed that brucite dissolution leads to pH increase and enrichment of seawaters in magnesium ions. The Mg 2+ ions, either pre-existing in the solution or added from brucite dissolution play a key role in CaCO 3 polymorph selection. In order to separate the Mg 2+ and OH – effects, CaCO 3 precipitation is induced by NaOH addition in artificial seawater with or without Mg 2+ . Under both NaOH and Mg(OH) 2 addition, only aragonite is precipitated from artificial and natural seawaters in our conditions. NaOH addition in Mg-free seawater allows us to predominantly obtain vaterite or calcite polymorphs, while both aragonite and calcite precipitates are observed from Mg-free seawater when NaOH is replaced by Mg(OH) 2 . Natural organic materials added in artificial seawater have a significant effect on aragonite morphology.

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What this paper is about

Brucite is often associated with calcium carbonate in calcareous scales. In this study, we focus on the effects of brucite dissolution on the carbonate precipitation. Brucite-saturated solutions are elaborated by adding the same amount of brucite powder in various volumes of different natural and artificial seawaters (natural organic materials are also added, with or without Mg 2+ ions). The Mg 2+ and Ca 2+ concentrations in seawater at the beginning and end of the experiments are determined by ICP-AES. The solid powders are ex-situ analyzed using XRD and SEM. It is observed that brucite dissolution leads to pH increase and enrichment of seawaters in magnesium ions. The Mg 2+ ions, either pre-existing in the solution or added from brucite dissolution play a key role in CaCO 3 polymorph selection. In order to separate the Mg 2+ and OH – effects, CaCO 3 precipitation is induced by NaOH addition in artificial seawater with or without Mg 2+ . Under both NaOH and Mg(OH) 2 addition, only aragonite is precipitated from artificial and natural seawaters in our conditions. NaOH addition in Mg-free seawater allows us to predominantly obtain vaterite or calcite polymorphs, while both aragonite and calcite precipitates are observed from Mg-free seawater when NaOH is replaced by Mg(OH) 2 . Natural organic materials added in artificial seawater have a significant effect on aragonite morphology.

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Available abstract

Brucite is often associated with calcium carbonate in calcareous scales. In this study, we focus on the effects of brucite dissolution on the carbonate precipitation. Brucite-saturated solutions are elaborated by adding the same amount of brucite powder in various volumes of different natural and artificial seawaters (natural organic materials are also added, with or without Mg 2+ ions). The Mg 2+ and Ca 2+ concentrations in seawater at the beginning and end of the experiments are determined by ICP-AES. The solid powders are ex-situ analyzed using XRD and SEM. It is observed that brucite dissolution leads to pH increase and enrichment of seawaters in magnesium ions. The Mg 2+ ions, either pre-existing in the solution or added from brucite dissolution play a key role in CaCO 3 polymorph selection. In order to separate the Mg 2+ and OH – effects, CaCO 3 precipitation is induced by NaOH addition in artificial seawater with or without Mg 2+ . Under both NaOH and Mg(OH) 2 addition, only aragonite is precipitated from artificial and natural seawaters in our conditions. NaOH addition in Mg-free seawater allows us to predominantly obtain vaterite or calcite polymorphs, while both aragonite and calcite precipitates are observed from Mg-free seawater when NaOH is replaced by Mg(OH) 2 . Natural organic materials added in artificial seawater have a significant effect on aragonite morphology.

Key concepts: Brucite, Aragonite, Calcite, Seawater, Calcium carbonate, Dissolution, Vaterite, Precipitation

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Role of Brucite Dissolution in Calcium Carbonate Precipitation from Artificial and Natural Seawaters — Research Paper | ScholarLens