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September 27, 2025Nature Communications5 citationsOpen Access

Molecular-resolution imaging of ice crystallized from liquid water by cryogenic liquid-cell TEM

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JDJingshan S. DuSBSuvo BanikHCHenry Chan

Key Points

  • High-resolution imaging techniques unveiled nanoscale defects in ice I h from liquid water, advancing understandings of ice behavior.
  • The study achieved Å-resolution imaging, demonstrating the ability to observe low-energy nanofacets on bubble surfaces within ice.
  • Molecular dynamics simulations indicated that ice formation is tolerant to defects, with bubbles dynamically interacting with the crystal.
  • The findings could have implications for studying crystallization behaviors at a molecular scale in various fields, including materials science.

Abstract

Abstract Despite the ubiquity of ice, a molecular-resolution image of nanoscopic defects or microstructures in ice crystallized from liquid water has never been obtained. This is mainly due to the difficulties in preparing and preserving crystalline ice samples that can survive under high-resolution imaging conditions. Here, we report the stabilization and Å-resolution electron imaging of ice I h crystallized from liquid water by developing cryogenic liquid-cell transmission electron microscopy (CRYOLIC-TEM). We combine lattice mapping with molecular dynamics simulations to reveal that ice formation is highly tolerant to nanoscale defects such as misoriented subdomains and trapped gas bubbles, which are stabilized by molecular-scale structural motifs. Importantly, bubble surfaces adopt low-energy nanofacets and create negligible strain fields in the surrounding crystal. These bubbles can dynamically nucleate, grow, migrate, dissolve, and coalesce under electron irradiation and be monitored in situ near a steady state. This work improves our understanding of water crystallization behaviors at a molecular spatial resolution.

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Cite This Study

Du et al. (2025) studied this question.

synapsesocial.com/papers/68d7e84439bbb06045426c92https://doi.org/10.1038/s41467-025-62451-0
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