Tunnelling and zero-point motion in high-pressure ice (original) (raw)
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- Published: 19 March 1998
Nature volume 392, pages 258–261 (1998)Cite this article
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Abstract
The microscopic structure of ice poses a long-standing challenge to theory1,2,3. Because of their low mass, the protons in the hydrogen bonds that define the structures of crystalline ice are susceptible to quantum-mechanical effects such as tunnelling1,4,5,6,7,8. High pressure provides a means of controlling the length of the hydrogen bonds in order to investigate such effects. In particular, Holzapfel predicted 26 years ago that, under pressure, hydrogen bonds might be transformed from the highly asymmetric O–H···O configuration to a symmetric state in which the proton lies midway between the two oxygens9, leading to a non-molecular symmetric phase of ice, now denoted as ice ‘X’. The existence of this phase has been inferred from spectroscopy10,11,12,13,14, but has still not been observed directly. Here we investigate the role of quantum effects in proton ordering and hydrogen-bond symmetrization within ice at high pressure by using a simulation technique that treats both electrons and nuclei quantum-mechanically15,16,17. We find that the proton-ordered structure at low pressure, with asymmetric hydrogen bonds (ice VIII), transforms on increasing pressure to a proton-disordered asymmetric phase (ice VII) owing to translational proton tunnelling. On further compression, the zero-point fluctuations lead to strongly delocalized protons and hydrogen-bond symmetrization, even though the underlying character of the proton-transfer potential remains a double well. Only at still higher pressures does the double-well potential become transformed into a single well, whereupon the protons again become increasingly localized.
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References
- Bernal, J. D. & Fowler, R. H. Atheory of water and ionic solutions, with particular reference to hydrogen and hydroxyl ions. J. Chem. Phys. 1, 515–548 (1933).
Article ADS CAS Google Scholar - Pauling, L. The structure and entropy of ice and of other crystals with some randomness of atomic arrangement. J. Am. Chem. Soc. 57, 2680–2684 (1935).
Article CAS Google Scholar - Bjerrum, N. Structure and properties of ice. Science 115, 385–390 (1952).
Article ADS CAS Google Scholar - Schweizer, K. S. & Stillinger, F. H. High pressure phase transitions and hydrogen-bond symmetry in ice polymorphs. J. Chem. Phys. 80, 1230–1240 (1984).
Article ADS CAS Google Scholar - McMahon, M. I.et al. Geometric effects of deuteration on hydrogen-ordering phase transitions. Nature 348, 317–319 (1990).
Article ADS CAS Google Scholar - Krumhansl, J. A. Sorting chickens from eggs. Nature 348, 285–286 (1990).
Article ADS Google Scholar - Lee, C., Vanderbilt, D., Laasonen, K., Car, R. & Parrinello, M. Ab initio studies on high pressure phases of ice. Phys. Rev. Lett. 69, 462–465 (1992).
Article ADS CAS Google Scholar - Lee, C., Vanderbilt, D., Laasonen, K., Car, R. & Parrinello, M. Ab initio studies on the structural and dynamical properties of ice. Phys. Rev. B 47, 4863–4872 (1993).
Article ADS CAS Google Scholar - Holzapfel, W. B. On the symmetry of the hydrogen bonds in ice VII. J. Chem. Phys. 56, 712–715 (1972).
Article ADS CAS Google Scholar - Pruzan, P., Chervin, J. C. & Canny, B. Stability domain of the ice VIII proton-ordered phase at very high pressure and low temperature. J. Chem. Phys. 99, 9842–9846 (1993).
Article ADS CAS Google Scholar - Pruzan, P. Pressure effects on the hydrogen bond in ice up to 80 GPa. J. Mol. Struct. 322, 279–286 (1994).
Article ADS CAS Google Scholar - Goncharov, A. F., Struzhkin, V. V., Somayazulu, M. S., Hemley, R. J. & Mao, H. K. Compression of ice to 210 Gigapascals: Infrared evidence for a symmetric hydrogen-bonded phase. Science 273, 218–220 (1996).
Article ADS CAS Google Scholar - Aoki, K., Yamawaki, H., Sakashita, M. & Fujihisa, H. Infrared absorption study of the hydrogen-bond symmetrization in ice to 100 GPa. Phys. Rev. B 54, 15673–15677 (1996).
Article ADS CAS Google Scholar - Struzhkin, V. V., Goncharov, A. F., Hemley, R. J. & Mao, H.-k. Cascading Fermi resonances and the soft mode in dense ice. Phys. Rev. Lett. 78, 4446–4449 (1997).
Article ADS CAS Google Scholar - Marx, D. & Parrinello, M. Ab initio path-integral molecular dynamics. Z. Phys. B (Rapid Note) 95, 143–144 (1994).
Article ADS CAS Google Scholar - Marx, D. & Parrinello, M. Ab initio path integral molecular dynamics: Basic ideas. J. Chem. Phys. 104, 4077–4082 (1996).
Article ADS CAS Google Scholar - Tuckerman, M. E., Marx, D., Klein, M. L. & Parrinello, M. Efficient and general algorithms for path integral Car–Parrinello molecular dyanamics. J. Chem. Phys. 104, 5579–5588 (1996).
Article ADS CAS Google Scholar - Hobbs, P. V. Ice Physics (Clarendon Press, Oxford, 1974).
Google Scholar - Nelmes, R. J.et al. Neutron diffraction study of the structure of deuterated ice VIII to 10 GPa. Phys. Rev. Lett. 71, 1192–1195 (1993).
Article ADS CAS Google Scholar - Aoki, K., Yamawaki, H. & Sakashita, M. Pressure-tuned Fermi Resonance in ice VII. Science 268, 1322–1324 (1995).
Article ADS CAS Google Scholar - Aoki, K., Yamawaki, H. & Sakashita, M. Observation of Fano interference in high-pressure ice VII. Phys. Rev. Lett. 76, 784–786 (1996).
Article ADS CAS Google Scholar - Hama, J. & Suito, K. Evidence of a new phase of ice above 70 GPa from the analysis of experimental data using the universal equation of state. Phys. Lett. A 187, 346–350 (1994).
Article ADS CAS Google Scholar - Pruzan, P.et al. Raman scattering and X-ray diffraction of ice in the Megabar range. Occurrence of a symmetric disordered solid above 62 GPa. J. Phys. Chem. B 101, 6230–6233 (1997).
Article CAS Google Scholar - Wolanin, E.et al. Equation of state of ice VII up to 106 GPa. Phys. Rev. B 56, 5781–5785 (1997).
Article ADS CAS Google Scholar - Ceperley, D. M. Path integrals in the theory of condensed helium. Rev. Mod. Phys. 67, 279–355 (1995).
Article ADS CAS Google Scholar - Jones, R. O. & Gunnarsson, O. The density functional formalism, its applications and prospects. Rev. Mod. Phys. 61, 689–746 (1989).
Article ADS CAS Google Scholar - Hemley, R. J.et al. Static compression of H2O-ice to 128 GPa (1.28 Mbar). Nature 330, 737–740 (1987).
Article ADS CAS Google Scholar - Nelmes, R. J., Loveday, J. S., Marshall, W. G., Besson, J. M., Klotz, S. & Hamel, G. Structures of ice VII and ice VIII to 20 GPa. Proceedings of the International Conference on High Pressure Science and Technology (Joint Conference: AIRAPT-16 & HPCJ-38)(Kyoto, August 25–29, 1997).
- Chandler, D. & Leung, K. Excess electrons in liquids, geometrical perspectives. Annu. Rev. Phys. Chem. 45, 557–591 (1994).
Article ADS CAS Google Scholar - Štich, I., Marx, D., Parrinello, M. & Terakura, K. Proton-induced plasticity of hydrogen clusters. Phys. Rev. Lett. 78, 3669–3672 (1997).
Article ADS Google Scholar - Becke, A. D. Density–functional exchange–energy approximation with correct asymptotic behavior. Phys. Rev. A 38, 3098–3100 (1988).
Article ADS CAS Google Scholar - Perdew, J. P. & Zunger, A. Self-interaction correction to density-functional approximations for many-electron systems. Phys. Rev. B 23, 5048–5079 (1981).
Article ADS CAS Google Scholar - Troullier, N. & Martins, J. L. Efficient pseudopotentials for plane-wave calculations. Phys. Rev. B 43, 1993–2006 (1991).
Article ADS CAS Google Scholar
Acknowledgements
Our warm thanks to M. Tuckerman, J. Hutter, U. Schwarz, M. Bernasconi and S.Klotz for useful discussions. The simulations were carried out on the IBM SP2 at CNUSC (Montpellier) and at MPI Stuttgart.
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Authors and Affiliations
- Laboratoire des Verres, Université, Montpellier II, 34095, Montpellier, France
Magali Benoit - Max-Planck-Institut für Festkörperforschung, Heisenbergstrasse 1, 70569, Stuttgart, Germany
Dominik Marx & Michele Parrinello
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Benoit, M., Marx, D. & Parrinello, M. Tunnelling and zero-point motion in high-pressure ice.Nature 392, 258–261 (1998). https://doi.org/10.1038/32609
- Received: 15 October 1997
- Accepted: 07 January 1998
- Issue Date: 19 March 1998
- DOI: https://doi.org/10.1038/32609