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Название: The most incompressible metal osmium at static pressures above 750 gigapascals
Авторы: Dubrovinsky, L.
Dubrovinskaia, N.
Bykova, E.
Bykov, M.
Prakapenka, V.
Prescher, C.
Glazyrin, K.
Liermann, H. -P.
Hanfland, M.
Ekholm, M.
Feng, Q.
Pourovskii, L. V.
Katsnelson, M. I.
Wills, J. M.
Abrikosov, I. A.
Дата публикации: 2015
Издатель: Nature Publishing Group
Библиографическое описание: The most incompressible metal osmium at static pressures above 750 gigapascals / L. Dubrovinsky, N. Dubrovinskaia, E. Bykova et al. // Nature. — 2015. — Vol. 525. — Iss. 7568. — P. 226-229.
Аннотация: Metallic osmium (Os) is one of the most exceptional elemental materials, having, at ambient pressure, the highest known density and one of the highest cohesive energies and melting temperatures. It is also very incompressible, but its high-pressure behaviour is not well understood because it has been studied so far only at pressures below 75 gigapascals. Here we report powder X-ray diffraction measurements on Os at multi-megabar pressures using both conventional and double-stage diamond anvil cells, with accurate pressure determination ensured by first obtaining self-consistent equations of state of gold, platinum, and tungsten in static experiments up to 500 gigapascals. These measurements allow us to show that Os retains its hexagonal close-packed structure upon compression to over 770 gigapascals. But although its molar volume monotonically decreases with pressure, the unit cell parameter ratio of Os exhibits anomalies at approximately 150 gigapascals and 440 gigapascals. Dynamical mean-field theory calculations suggest that the former anomaly is a signature of the topological change of the Fermi surface for valence electrons. However, the anomaly at 440 gigapascals might be related to an electronic transition associated with pressure-induced interactions between core electrons. The ability to affect the core electrons under static high-pressure experimental conditions, even for incompressible metals such as Os, opens up opportunities to search for new states of matter under extreme compression. © 2015 Macmillan Publishers Limited.
Ключевые слова: DIAMOND
GOLD
OSMIUM
PLATINUM
TUNGSTEN
COMPRESSIBILITY
ELECTRON
EQUATION OF STATE
EXPERIMENTAL DESIGN
HIGH PRESSURE
MELTING
METAL
OSMIUM
X-RAY DIFFRACTION
ARTICLE
CELL VOLUME
COMPRESSION
DIFFRACTION
MEASUREMENT ACCURACY
PRESSURE
PRESSURE MEASUREMENT
PRIORITY JOURNAL
SURFACE PROPERTY
THEORETICAL STUDY
VOLUME
X RAY DIFFRACTION
URI: http://elar.urfu.ru/handle/10995/118387
Условия доступа: info:eu-repo/semantics/openAccess
Идентификатор SCOPUS: 84941202727
Идентификатор WOS: 000360927400033
Идентификатор PURE: 301443
ISSN: 280836
DOI: 10.1038/nature14681
Сведения о поддержке: DE-FG02-94ER14466; EAR-1128799; U.S. Department of Energy, USDOE; Office of Science, SC; Argonne National Laboratory, ANL: DE-AC02-06CH11357; Association Française contre les Myopathies, AFM; European Research Council, ERC: 338957 FEMTO/NANO; Deutsche Forschungsgemeinschaft, DFG; Bundesministerium für Bildung und Forschung, BMBF: 10-0026, 5K13WC3, DU 954-8/1, O5K2013; Nederlandse Organisatie voor Wetenschappelijk Onderzoek, NWO; Ministry of Education and Science of the Russian Federation, Minobrnauka; Vetenskapsrådet, VR: 621-2011-4426; Science and Engineering Research Council, SERC
Acknowledgements L.D. and N.D. acknowledge financial support from the Deutsche Forschungsgemeinschaft (DFG) and the Federal Ministry of Education and Research (BMBF), Germany. N.D. thanks the DFG for funding through the Heisenberg Program and the DFG project number DU 954-8/1, and the BMBF for grant number 5K13WC3 (Verbundprojekt O5K2013, Teilprojekt 2, PT-DESY). M.E., Q.F., and I.A.A. acknowledge supportfromthe SwedishFoundationforStrategicResearchprogramme SRL grant numbers 10-0026, the Swedish Research Council (VR) grant numbers 621-2011-4426, the Swedish Government Strategic Research Area Grant Swedish e-Science Research Centre (SeRC), and in Materials Science “Advanced Functional Materials” (AFM). The work was supported by the Ministry of Education and Science of the Russian Federation (grant number 14.Y26.31.0005). The simulations were carried out using supercomputer resources provided by the Swedish national infrastructure for computing (SNIC). M.I.K. acknowledges financial support from the ERC Advanced grant number 338957 FEMTO/NANO and from NWO via a Spinoza Prize. Portions of this work were performed at GeoSoilEnviroCARS (Sector 13), Advanced Photon Source (APS), Argonne National Laboratory. GeoSoilEnviroCARS is supported by the National Science Foundation - Earth Sciences (EAR-1128799) and Department of Energy - GeoSciences (DE-FG02-94ER14466). This research used resources of the Advanced Photon Source, a US Department of Energy (DOE) Office of Science User Facility operated for the DOE Office of Science by Argonne National Laboratory under contract number DE-AC02-06CH11357.
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