Crystallization of pristine cubic ice from liquid at ambient pressure
Chenwei Zheng, Paul F. Henry, Aasim I. Shaffi, Sanghamitra Mukhopadhyay, Miroslava Novoveska, Milz L. Beaumont, Yidan Wang, Camilla Di Mino, Tom F. Headen, Marta Falkowska, Christopher A. Howard, Adam J. Clancy, Christoph G. Salzmann, Neal T. Skipper
Abstract
The phase diagram of frozen water is famously rich: to date, over twenty crystalline polymorphs have been identified. Of the low-pressure 'ice I' family, hexagonal (Ih) is the principal form on Earth, while cubic (Ic) is much more elusive. Fundamental questions remain open as to whether cubic ice Ic can form directly from the liquid state, its thermodynamic stability and natural occurrence. Here we show that pristine cubic ice Ic can be formed at atmospheric pressure simply by cooling an aqueous solution confined within mesoporous silica. Using primarily neutron scattering, we show unambiguously that under these conditions, cubic ice Ic forms reproducibly and is the only thermodynamically stable crystalline phase of water. The discovery that cubic ice Ic is directly accessible from the liquid state, and stable at atmospheric pressure, strongly suggests that this polymorph plays a much more significant role in natural and synthetic processes than previously thought.
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