The Journal of Physical Chemistry Letters· 2026Q1
Water Activity Governs Ice Nanocrystal Evolution in Rapidly Frozen Sugar Solutions
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- 2026year
Short summary
Water activity, not sugar concentration alone, dictates ice nanocrystal growth and arrest in rapidly frozen sugar solutions, converging to 0.80-0.82 before vitrification.
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Key points
- SCV-SANS revealed that ice nanocrystal size and evolution in rapidly frozen sugar solutions depend on water activity.
- Ice crystal growth arrested at specific freeze-concentrated sugar levels (66-71 wt% for trehalose/sucrose, 62-63 wt% for glucose).
- The water activity at growth arrest converged to 0.80-0.82 across different sugars and concentrations.
- Ostwald ripening was identified as the dominant crystal growth mechanism, influenced by sugar concentration and species.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Formation and evolution of ice nanocrystals in rapidly frozen sugar solutions were investigated using spin-contrast-variation small-angle neutron scattering (SCV-SANS). As the sugar concentration decreased, the SCV-SANS signal from nanocrystalline ice plates decreased relative to that from micrometer-sized ice crystals, while the diffraction peaks became sharper. These results indicate that the micrometer-sized crystals formed predominantly through Ostwald ripening, which depended primarily on sugar concentration and secondarily on sugar species. Regardless of the initial sugar concentration, ice crystal growth was arrested when the sugar concentration in the freeze-concentrated amorphous ice reached 66–71 wt % for trehalose and sucrose and 62–63 wt % for glucose. Despite its lower glass-transition temperature, glucose showed growth arrest at a lower degree of freeze concentration than trehalose and sucrose. However, the water activity at these growth-arrest concentrations converged to 0.80–0.82 under the present rapid-freezing conditions, indicating that water activity determines ice nanocrystal evolution until vitrification arrests further growth.
The authors' abstract, as published at the source. The Journal of Physical Chemistry Letters, 2026 · DOI ↗
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Field: Mechanics of Materials
Mechanics of MaterialsEngineering