Inorganic Chemistry· 2026Q1
Bicarbonate Liquid Condensate Controls Manganese Partitioning in Calcite
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- Q1SCImago
- 2026year
Short summary
Manganese (Mn2+) incorporation into calcite crystals is controlled by bicarbonate-rich liquid condensates that form at the crystal-water interface under near-neutral pH conditions.
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Key points
- Bicarbonate-rich liquid condensates form at the calcite-water interface when Mn2+ is present near-neutral pH.
- These condensates act as a mechanistic link controlling Mn incorporation into calcite.
- The condensates deprotonate and dehydrate into Mn-bearing amorphous carbonate.
- This amorphous phase crystallizes into calcite-rhodochrosite solid solutions with increasing Mn content.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Crystals formed in aqueous solutions often encode chemical memories of their growth environment. However, the molecular pathway of element partitioning that links solution chemistry to solid composition remains elusive when growth proceeds through nonclassical intermediates. In this study, we investigated calcite growth mechanisms in the presence of aqueous manganese (Mn2+) under chemostat conditions using a custom titration method. At near-neutral pH, where bicarbonate ions dominate, we show that Mn2+ triggers the formation of bicarbonate-rich, ion-paired liquid condensates that accumulate at the calcite–water interface and control Mn incorporation into the solid phase. Time-resolved in situ X-ray scattering and Raman spectroscopy, combined with cryogenic transmission electron microscopy and molecular dynamics simulations, reveal a pathway in which these condensates deprotonate and dehydrate into Mn-bearing amorphous carbonate that crystallizes into polycrystalline calcite–rhodochrosite interfacial solid solutions with progressively increasing Mn content. These results identify an interfacial, bicarbonate-rich liquid condensate as a mechanistic link between crystallization pathway and element partitioning, suggesting that nanoscale interfacial fluid organization can dominate selective ion uptake during crystallization in multicomponent aqueous environments that are relevant to geoscience, environmental science, chemistry, or materials science.
The authors' abstract, as published at the source. Inorganic Chemistry, 2026 · DOI ↗
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