Dielectric ordering of water molecules arranged in a dipolar lattice.


Journal

Nature communications
ISSN: 2041-1723
Titre abrégé: Nat Commun
Pays: England
ID NLM: 101528555

Informations de publication

Date de publication:
06 08 2020
Historique:
received: 29 10 2019
accepted: 17 07 2020
entrez: 9 8 2020
pubmed: 9 8 2020
medline: 9 8 2020
Statut: epublish

Résumé

Intermolecular hydrogen bonds impede long-range (anti-)ferroelectric order of water. We confine H

Identifiants

pubmed: 32764722
doi: 10.1038/s41467-020-17832-y
pii: 10.1038/s41467-020-17832-y
pmc: PMC7411056
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

3927

Références

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).
doi: 10.1021/ja01315a102
Bramwell, S. T. Ferroelectric ice. Nature397, 212–213 (1999).
doi: 10.1038/16594
Petrenko, V. F. & Whitworth, R. W. Physics of Ice (Oxford University Press, 2002).
Köster, K. W. et al. Dynamics enhanced by HCl doping triggers 60% Pauling entropy release at the ice XII–XIV transition. Nat. Commun.6, 7349 (2015).
pubmed: 26076946 pmcid: 4490580 doi: 10.1038/ncomms8349
Laage, D., Elsaesser, T. & Hynes, J. T. Water dynamics in the hydration shells of biomolecules. Chem. Rev.117, 10694–10725 (2017).
pubmed: 28248491 pmcid: 5571470 doi: 10.1021/acs.chemrev.6b00765
Bellissent-Funel, M.-C. et al. Water determines the structure and dynamics of proteins. Chem. Rev.116, 7673–7697 (2016).
pubmed: 27186992 doi: 10.1021/acs.chemrev.5b00664 pmcid: 7116073
Ball, P. Water as an active constituent in cell biology. Chem. Rev.108, 74–108 (2008).
pubmed: 18095715 doi: 10.1021/cr068037a
Fogarty, A. C. & Laage, D. Water dynamics in protein hydration shells: the molecular origins of the dynamical perturbation. J. Phys. Chem. B118, 7715–7729 (2014).
pubmed: 24479585 pmcid: 4103960 doi: 10.1021/jp409805p
Su, X., Lianos, L., Shen, Y. R. & Somorjai, G. A. Surface-Induced Ferroelectric Ice on Pt(111). Phys. Rev. Lett.80, 1533–1536 (1998).
doi: 10.1103/PhysRevLett.80.1533
Iedema, M. J. et al. Ferroelectricity in Water Ice. J. Phys. Chem. B102, 9203–9214 (1998).
doi: 10.1021/jp982549e
Spagnoli, C., Loos, K., Ulman, A. & Cowman, M. K. Imaging structured water and bound polysaccharide on mica surface at ambient temperature. J. Am. Chem. Soc.125, 7124–7128 (2003).
pubmed: 12783566 doi: 10.1021/ja029721j
Zhang, C., Gygi, F. & Galli, G. Strongly anisotropic dielectric relaxation of water at the nanoscale. J. Phys. Chem. Lett.4, 2477–2481 (2013).
doi: 10.1021/jz401108n
Kanth, J. M. P., Vemparala, S. & Anishetty, R. Long-distance correlations in molecular orientations of liquid water and shape-dependent hydrophobic force. Phys. Rev. E81, 21201 (2010).
doi: 10.1103/PhysRevE.81.021201
Neek-Amal, M., Peeters, F. M., Grigorieva, I. V. & Geim, A. K. Commensurability effects in viscosity of nanoconfined water. ACS Nano10, 3685–3692 (2016).
pubmed: 26882095 doi: 10.1021/acsnano.6b00187
Sobrino Fernández, M., Peeters, F. M. & Neek-Amal, M. Electric-field-induced structural changes in water confined between two graphene layers. Phys. Rev. B94, 45436 (2016).
doi: 10.1103/PhysRevB.94.045436
Jiao, S., Duan, C. & Xu, Z. Structures and thermodynamics of water encapsulated by graphene. Sci. Rep.7, 2646 (2017).
pubmed: 28572635 pmcid: 5453971 doi: 10.1038/s41598-017-02582-7
Cicero, G., Grossman, J. C., Schwegler, E., Gygi, F. & Galli, G. Water confined in nanotubes and between graphene sheets: a first principle study. J. Am. Chem. Soc.130, 1871–1878 (2008).
pubmed: 18211065 doi: 10.1021/ja074418+
Garberoglio, G. Collective properties of water confined in carbon nanotubes: a computer simulation study. Eur. Phys. J. E31, 73–80 (2010).
pubmed: 20087621 doi: 10.1140/epje/i2010-10552-0
Reiter, G. F. et al. Evidence for an anomalous quantum state of protons in nanoconfined water. Phys. Rev. B85, 45403 (2012).
doi: 10.1103/PhysRevB.85.045403
Kolesnikov, A. I. et al. Anomalously soft dynamics of water in a nanotube: a revelation of nanoscale confinement. Phys. Rev. Lett.93, 35503 (2004).
doi: 10.1103/PhysRevLett.93.035503
Nakamura, Y. & Ohno, T. Ferroelectric mobile water. Phys. Chem. Chem. Phys.13, 1064–1069 (2011).
pubmed: 21072393 doi: 10.1039/C0CP01428A
Luo, C., Fa, W., Zhou, J., Dong, J. & Zeng, X. C. Ferroelectric ordering in ice nanotubes confined in carbon nanotubes. Nano Lett.8, 2607–2612 (2008).
pubmed: 18683990 doi: 10.1021/nl072642r
Köfinger, J., Hummer, G. & Dellago, C. Macroscopically ordered water in nanopores. Proc. Natl Acad. Sci.105, 13218 LP–13213222 (2008).
doi: 10.1073/pnas.0801448105
Kurotobi, K. & Murata, Y. A single molecule of water encapsulated in fullerene C60. Sci. (80-.).333, 613 LP–613616 (2011).
doi: 10.1126/science.1206376
Beduz, C. et al. Quantum rotation of ortho and para-water encapsulated in a fullerene cage. Proc. Natl Acad. Sci. U. S. A.109, 12894–12898 (2012).
pubmed: 22837402 pmcid: 3420201 doi: 10.1073/pnas.1210790109
Aoyagi, S. et al. A cubic dipole lattice of water molecules trapped inside carbon cages. Chem. Commun.50, 524–526 (2014).
doi: 10.1039/C3CC46683C
LeBard, D. N. & Matyushov, D. V. Ferroelectric hydration shells around proteins: electrostatics of the protein−water interface. J. Phys. Chem. B114, 9246–9258 (2010).
pubmed: 20578769 doi: 10.1021/jp1006999
Caridad, J. M. et al. A graphene-edge ferroelectric molecular switch. Nano Lett.18, 4675–4683 (2018).
pubmed: 30029573 doi: 10.1021/acs.nanolett.8b00797
Shim, J. et al. Water-gated charge doping of graphene induced by mica substrates. Nano Lett.12, 648–654 (2012).
pubmed: 22260483 doi: 10.1021/nl2034317
Lee, D., Ahn, G. & Ryu, S. Two-dimensional water diffusion at a graphene–silica interface. J. Am. Chem. Soc.136, 6634–6642 (2014).
pubmed: 24730705 doi: 10.1021/ja4121988
Severin, N., Lange, P., Sokolov, I. M. & Rabe, J. P. Reversible dewetting of a molecularly thin fluid water film in a soft graphene–mica slit pore. Nano Lett.12, 774–779 (2012).
pubmed: 22216882 doi: 10.1021/nl2037358
Olson, E. J. et al. Capacitive sensing of intercalated H
pubmed: 26502269 doi: 10.1021/acsami.5b07731
Wang, Y. & Xu, Z. Water intercalation for seamless, electrically insulating, and thermally transparent interfaces. ACS Appl. Mater. Interfaces8, 1970–1976 (2016).
pubmed: 26720217 doi: 10.1021/acsami.5b10173
Zhao, H.-X. et al. Transition from one-dimensional water to ferroelectric ice within a supramolecular architecture. Proc. Natl Acad. Sci.108, 3481–3486 (2011).
pubmed: 21321232 doi: 10.1073/pnas.1010310108 pmcid: 3048133
Maniwa, Y. et al. Ordered water inside carbon nanotubes: formation of pentagonal to octagonal ice-nanotubes. Chem. Phys. Lett.401, 534–538 (2005).
doi: 10.1016/j.cplett.2004.11.112
Parkkinen, P., Riikonen, S. & Halonen, L. Ice XI: not that ferroelectric. J. Phys. Chem. C.118, 26264–26275 (2014).
doi: 10.1021/jp510009m
Zhao, W. H., Bai, J., Yuan, L. F., Yang, J. & Zeng, X. C. Ferroelectric hexagonal and rhombic monolayer ice phases. Chem. Sci.5, 1757–1764 (2014).
doi: 10.1039/C3SC53368A
Algara-Siller, G. et al. Square ice in graphene nanocapillaries. Nature519, 443–445 (2015).
pubmed: 25810206 doi: 10.1038/nature14295
Zhou, W. et al. The observation of square ice in graphene questioned. Nature528, E1–E2 (2015).
pubmed: 26701058 doi: 10.1038/nature16145
Algara-Siller, G., Lehtinen, O. & Kaiser, U. Algara-Siller et al. reply. Nature528, E3–E3 (2015).
pubmed: 26701060 doi: 10.1038/nature16149
Wang, F. C., Wu, H. A. & Geim, A. K. Wang et al. reply. Nature528, E3–E3 (2015).
pubmed: 26701059 doi: 10.1038/nature16146
Winkler, B. The dynamics of H
doi: 10.1007/BF00207783
Kolesov, B. A. & Geiger, C. A. Behavior of H
doi: 10.2138/am.2006.2049
Rowley, S. E. et al. Ferroelectric quantum criticality. Nat. Phys.10, 367 (2014).
doi: 10.1038/nphys2924
Rowley, S. E. et al. Uniaxial ferroelectric quantum criticality in multiferroic hexaferrites BaFe
pubmed: 27185343 pmcid: 4869023 doi: 10.1038/srep25724
Gorshunov, B. P. et al. Quantum behavior of water molecules confined to nanocavities in gemstones. J. Phys. Chem. Lett.4, 2015–2020 (2013).
pubmed: 26283245 doi: 10.1021/jz400782j
Gorshunov, B. P. et al. Incipient ferroelectricity of water molecules confined to nano-channels of beryl. Nat. Commun.7, 12842 (2016).
pubmed: 27687693 pmcid: 5056440 doi: 10.1038/ncomms12842
Belyanchikov, M. A. et al. Vibrational states of nano-confined water molecules in beryl investigated by first-principles calculations and optical experiments. Phys. Chem. Chem. Phys.19, 30740–30748 (2017).
pubmed: 29125156 doi: 10.1039/C7CP06472A
Dressel, M., Zhukova, E. S., Thomas, V. G. & Gorshunov, B. P. Quantum electric dipole lattice: water molecules confined to nanocavities in beryl. J. Infrared, Millim., Terahertz Waves39, 799–815 (2018).
doi: 10.1007/s10762-018-0472-8
Zhukova, E. S. et al. H2O molecules hosted by a crystalline matrix - New state of water? EPJ Web Conf.195, 1–2 (2018).
doi: 10.1051/epjconf/201819506018
Zhukova, E. S. et al. Vibrational states of a water molecule in a nano-cavity of beryl crystal lattice. J. Chem. Phys.140, 0–11 (2014).
doi: 10.1063/1.4882062
Kolesnikov, A. I. et al. Quantum tunneling of water in beryl: a new state of the water molecule. Phys. Rev. Lett.116, 167802 (2016).
pubmed: 27152824 doi: 10.1103/PhysRevLett.116.167802
Gibbs, G. V. The polymorphism of cordierite I: the crystal structure of low cordierite. Am. Mineral.51, 1068–1087 (1966).
Kolesov, B. A. & Geiger, C. A. Cordierite II: The role of CO
doi: 10.2138/am-2000-8-919
Lines, M. E. & Glass, A. M. Principles and Applications of Ferroelectrics and Related Materials (Clarendon Press, 1977).
Cowley, R. A., Gvasaliya, S. N., Lushnikov, S. G., Roessli, B. & Rotaru, G. M. Relaxing with relaxors: a review of relaxor ferroelectrics. Adv. Phys.60, 229–327 (2011).
doi: 10.1080/00018732.2011.555385
Elton, D. C. & Fernández-Serra, M.-V. Polar nanoregions in water: a study of the dielectric properties of TIP4P/2005, TIP4P/2005f and TTM3F. J. Chem. Phys.140, 124504 (2014).
pubmed: 24697456 doi: 10.1063/1.4869110
Martin, D. R. & Matyushov, D. V. Dipolar nanodomains in protein hydration shells. J. Phys. Chem. Lett.6, 407–412 (2015).
pubmed: 26261956 doi: 10.1021/jz5025433
Cross, L. E. Relaxor ferroelectrics. Ferroelectrics76, 241–267 (1987).
doi: 10.1080/00150198708016945
Samara, G. A. The relaxational properties of compositionally disordered ABO
doi: 10.1088/0953-8984/15/9/202
Blinc, R. & Žekš, B. Soft Modes in Ferroelectrics and Antiferroelectrics (North-Holland Pub. Co., 1974).
Hatta, I. Static electric susceptibility and dielectric relaxation time near the transition points in NaNO
doi: 10.1143/JPSJ.28.1266
Starešinić, D., Biljaković, K., Lunkenheimer, P. & Loidl, A. Slowing down of the relaxational dynamics at the ferroelectric phase transition in one-dimensional (TMTTF)
doi: 10.1016/j.ssc.2005.11.035
Schiebl, M. et al. Order-disorder type critical behavior at the magnetoelectric phase transition in multiferroic DyMnO
doi: 10.1103/PhysRevB.91.224205
Bovtun, V. et al. Broadband dielectric spectroscopy of phonons and polar nanoclusters in PbMg(1/3)Nb(2/3)O
doi: 10.1103/PhysRevB.79.104111
Böhmer, R., Maglione, M., Lunkenheimer, P. & Loidl, A. Radio‐frequency dielectric measurements at temperatures from 10 to 450 K. J. Appl. Phys.65, 901–904 (1989).
doi: 10.1063/1.342990
Lepezin, G. G. & Melenevsky, V. N. On the problem of water diffusion in the cordierites. LITHOS10, 49–57 (1977).
doi: 10.1016/0024-4937(77)90030-5
Kresse, G. & Hafner, J. Ab initio molecular dynamics for liquid metals. Phys. Rev. B47, 558–561 (1993).
doi: 10.1103/PhysRevB.47.558
Kresse, G. & Furthmüller, J. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys. Rev. B54, 11169–11186 (1996).
doi: 10.1103/PhysRevB.54.11169
Blöchl, P. E. Projector augmented-wave method. Phys. Rev. B50, 17953–17979 (1994).
doi: 10.1103/PhysRevB.50.17953
Perdew, J. P., Burke, K. & Ernzerhof, M. Generalized gradient approximation made simple. Phys. Rev. Lett.77, 3865–3868 (1996).
pubmed: 10062328 doi: 10.1103/PhysRevLett.77.3865
Lee, K., Murray, É. D., Kong, L., Lundqvist, B. I. & Langreth, D. C. Higher-accuracy van der Waals density functional. Phys. Rev. B82, 81101 (2010).
doi: 10.1103/PhysRevB.82.081101

Auteurs

M A Belyanchikov (MA)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia. belyanchikov@phystech.edu.

M Savinov (M)

Institute of Physics, Czech Academy of Sciences, 18221, Praha 8, Czech Republic.

Z V Bedran (ZV)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia.

P Bednyakov (P)

Institute of Physics, Czech Academy of Sciences, 18221, Praha 8, Czech Republic.

P Proschek (P)

Department of Condensed Matter Physics, Faculty of Mathematics and Physics, Charles University, 12116, Prague 2, Czech Republic.

J Prokleska (J)

Department of Condensed Matter Physics, Faculty of Mathematics and Physics, Charles University, 12116, Prague 2, Czech Republic.

V A Abalmasov (VA)

Institute of Automation and Electrometry SB RAS, 630090, Novosibirsk, Russia.

J Petzelt (J)

Institute of Physics, Czech Academy of Sciences, 18221, Praha 8, Czech Republic.

E S Zhukova (ES)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia.

V G Thomas (VG)

Sobolev Institute of Geology and Mineralogy, RAS, 630090, Novosibirsk, Russia.
Novosibirsk State University, 630090, Novosibirsk, Russia.

A Dudka (A)

Shubnikov Institute of Crystallography, "Crystallography and Photonics", Russian Academy of Sciences, 119333, Moscow, Russia.

A Zhugayevych (A)

Skolkovo Institute of Science and Technology, 143026, Moscow, Russia.

A S Prokhorov (AS)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia.
Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.

V B Anzin (VB)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia.
Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow, Russia.

R K Kremer (RK)

Max-Planck-Institut für Festkörperforschung, 70569, Stuttgart, Germany.

J K H Fischer (JKH)

Experimental Physics V, University of Augsburg, 86135, Augsburg, Germany.
T. Kimura Lab, Department of Advanced Materials Science, University of Tokyo, Tokyo, Japan.

P Lunkenheimer (P)

Experimental Physics V, University of Augsburg, 86135, Augsburg, Germany.

A Loidl (A)

Experimental Physics V, University of Augsburg, 86135, Augsburg, Germany.

E Uykur (E)

1.Physikalisches Institut, Universität Stuttgart, 70569, Stuttgart, Germany.

M Dressel (M)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia.
1.Physikalisches Institut, Universität Stuttgart, 70569, Stuttgart, Germany.

B Gorshunov (B)

Moscow Institute of Physics and Technology (National Research University), 141701 Dolgoprudny, Moscow Region, Russia. gorshunov.bp@mipt.ru.

Classifications MeSH