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Updated: May 14, 2026

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Crystallization of Carbonates with a Core-Shell Structure: Insights into Cobalt-Iron Separation for Enhanced Critical
Xueyi Liu1, Sebastien N Kerisit2, Cindy Borrayo-Carrera1
1Department of Energy, Environmental & Chemical Engineering, Washington University in St. Louis, St. Louis, Missouri 63130, United States.
Abstract:
Carbonation of mafic and ultramafic silicates holds great potential for carbon removal by the formation of stable carbonate minerals. Cobalt (Co), a critical element alongside minor cations, such as iron (Fe) and calcium (Ca), often coexists in these silicates. Understanding carbonate coprecipitation dynamics in multi-ion systems is essential to optimize carbon mineralization and critical element recovery. In this study, coprecipitation experiments were conducted with dominant Mg and minor cations (i.e., Co, Fe, or Ca) for a range of concentrations at 95 °C and 30 bar CO2. Characterization of solids revealed the formation of carbonate particles with a core-shell structure, with minor cations encapsulated within the core and covered by a shell of magnesite (MgCO3). MgCO3 crystallization was accelerated in the presence of these minor cations, with Co having the strongest effect, followed by Fe and then Ca. Conversely, minor cation carbonate precipitation was slowed by the presence of Mg. Additional coprecipitation experiments in the Co-Fe-Mg triple-cation system revealed that under aerobic conditions Co and Fe became spatially and phase-isolated due to MgCO3 formation, preferably trapping Co inside carbonates, while Fe precipitated separately as iron hydroxides. These findings illuminate kinetics changes and heterogeneity evolution of the carbonation process in multi-ion systems and provide scientific foundations for Co-Fe isolation in coprecipitation processes for better Co recovery.
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To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions between the electrons from the ligands and the electrons in the unhybridized d orbitals of the central metal atom has been developed. This electrostatic model is crystal field theory (CFT). It helps to understand, interpret, and predict the colors, magnetic behavior, and some structures of coordination compounds of transition metals.
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