Coexistence of vitreous and crystalline phases of H 2 O at ambient temperature

Author:

Shargh Ali K.1ORCID,Picard Aude2ORCID,Hrubiak Rostislav3ORCID,Zhang Dongzhou4,Hemley Russell J.5ORCID,Deemyad Shanti6ORCID,Abdolrahim Niaz1ORCID,Saffarian Saveez678ORCID

Affiliation:

1. Department of Mechanical Engineering, University of Rochester, Rochester, NY 14627

2. School of Life Sciences, University of Nevada Las Vegas, Las Vegas, NV 89119

3. High Pressure Collaborative Access Team, X-ray Science Division, Argonne National Laboratory, Argonne, IL 60439

4. Hawaii Institute of Geophysics and Planetology, University of Hawaii at Manoa, Honolulu, HI 96822

5. Departments of Physics, Chemistry, and Earth and Environmental Sciences, University of Illinois Chicago, Chicago, IL 60607

6. Department of Physics and Astronomy, University of Utah, Salt Lake City, UT 84112

7. Center for Cell and Genome Science, University of Utah, Salt Lake City, UT 84112

8. School of Biological Sciences, University of Utah, Salt Lake City, UT 84112

Abstract

Formation of vitreous ice during rapid compression of water at room temperature is important for biology and the study of biological systems. Here, we show that Raman spectra of rapidly compressed water at greater than 1 GPa at room temperature exhibits the signature of high-density amorphous ice, whereas the X-ray diffraction (XRD) pattern is dominated by crystalline ice VI. To resolve this apparent contradiction, we used molecular dynamics simulations to calculate full vibrational spectra and diffraction patterns of mixtures of vitreous ice and ice VI, including embedded interfaces between the two phases. We show quantitatively that Raman spectra, which probe the local polarizability with respect to atomic displacements, are dominated by the vitreous phase, whereas a small amount of the crystalline component is readily apparent by XRD. The results of our combined experimental and theoretical studies have implications for detecting vitreous phases of water, survival of biological systems under extreme conditions, and biological imaging. The results provide additional insight into the stable and metastable phases of H 2 O as a function of pressure and temperature, as well as of other materials undergoing pressure-induced amorphization and other metastable transitions.

Funder

HHS | NIH | National Institute of Allergy and Infectious Diseases

U.S. Department of Energy

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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