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Название: Magnetic flux trapping in hydrogen-rich high-temperature superconductors
Авторы: Minkov, V. S.
Ksenofontov, V.
Bud’ko, S. L.
Talantsev, E. F.
Eremets, M. I.
Дата публикации: 2023
Издатель: Nature Research
Библиографическое описание: Minkov, VS, Ksenofontov, V, Bud’ko, SL, Talantsev, E & Eremets, M 2023, 'Magnetic flux trapping in hydrogen-rich high-temperature superconductors', Nature Physics, Том. 19, № 9, стр. 1293-1300. https://doi.org/10.1038/s41567-023-02089-1
Minkov, V. S., Ksenofontov, V., Bud’ko, S. L., Talantsev, E., & Eremets, M. (2023). Magnetic flux trapping in hydrogen-rich high-temperature superconductors. Nature Physics, 19(9), 1293-1300. https://doi.org/10.1038/s41567-023-02089-1
Аннотация: Recent discoveries of superconductivity in various hydrides at high pressures have shown that a critical temperature of superconductivity can reach near-room-temperature values. However, experimental studies are limited by high-pressure conditions, and electrical transport measurements have been the primary technique for detecting superconductivity in hydrides. Here we implement a non-conventional protocol for the magnetic measurements of superconductors in a SQUID magnetometer and probe the trapped magnetic flux in two near-room-temperature superconductors H3S and LaH10 at high pressures. Contrary to traditional magnetic susceptibility measurements, the magnetic response from the trapped flux is almost unaffected by the background signal of the diamond anvil cell due to the absence of external magnetic fields. The behaviour of the trapped flux generated under zero-field-cooled and field-cooled conditions proves the existence of superconductivity in these materials. We reveal that the absence of a pronounced Meissner effect is associated with the very strong pinning of vortices inside the samples. This approach can also be a tool for studying multiphase samples or samples that have a low superconducting fraction at ambient pressure. © 2023, The Author(s).
Ключевые слова: HIGH TEMPERATURE SUPERCONDUCTORS
HYDROGEN
LANTHANUM COMPOUNDS
MAGNETIC FLUX
MAGNETIC SUSCEPTIBILITY
MAGNETOMETERS
CRITICAL TEMPERATURES
ELECTRICAL TRANSPORT MEASUREMENTS
HIGH PRESSURE
HIGH-PRESSURE CONDITION
HIGH-TEMPERATURE SUPERCONDUCTOR
MEASUREMENTS OF
NEAR ROOM TEMPERATURE
SQUID MAGNETOMETERS
TEMPERATURE VALUES
TRAPPED FLUX
HYDRIDES
URI: http://elar.urfu.ru/handle/10995/130560
Условия доступа: info:eu-repo/semantics/openAccess
cc-by
Текст лицензии: https://creativecommons.org/licenses/by/4.0/
Идентификатор SCOPUS: 85162021241
Идентификатор WOS: 001009953300001
Идентификатор PURE: 44668728
ISSN: 1745-2473
DOI: 10.1038/s41567-023-02089-1
Сведения о поддержке: U.S. Department of Energy, USDOE; Office of Science, SC; Basic Energy Sciences, BES; Ames Laboratory, AL; Division of Materials Sciences and Engineering, DMSE: DE-AC02-07CH11358; Ministry of Education and Science of the Russian Federation, Minobrnauka: AAAA-A18-118020190104-3; Ural Federal University, UrFU
M.I.E. is thankful to the Max Planck community for their support, and U. Pöschl for the constant encouragement. Work at the Ames Laboratory (S.L.B.) was supported by the US Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division, under contract no. DE-AC02-07CH11358. E.F.T. acknowledges financial support by the Ministry of Science and Higher Education of the Russian Federation through grant no. AAAA-A18-118020190104-3 and through a Ural Federal University project within the Priority-2030 Program. We are thankful to V. G. Kogan and J. E. Hirsch for valuable discussions.
Располагается в коллекциях:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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