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dc.contributor.author김재용-
dc.date.accessioned2020-04-16T07:37:01Z-
dc.date.available2020-04-16T07:37:01Z-
dc.date.issued2019-04-
dc.identifier.citationPHYSICAL REVIEW B, v. 99, NO 14, no. 140501en_US
dc.identifier.issn2469-9950-
dc.identifier.issn2469-9969-
dc.identifier.urihttps://journals.aps.org/prb/abstract/10.1103/PhysRevB.99.140501-
dc.identifier.urihttps://repository.hanyang.ac.kr/handle/20.500.11754/151058-
dc.description.abstractRoom-temperature superconductivity has been one of the most challenging subjects in modern physics. Recent experiments reported that lanthanum hydride LaH10 +/- x (x ˂ 1) raises a superconducting transition temperature T-c up to similar to 260 (or 250) K at high pressures around 190 (170) GPa. Here, based on first-principles calculations, we reveal that compressed LaH10 has symmetry-protected Dirac-nodal-line states, which split into holelike and electronlike bands at the high-symmetry points near the Fermi energy (E-F), thereby producing a van Hove singularity (vHs). The crystalline symmetry and the band topology around the high-symmetry points near E-F are thus demonstrated to be important for room-temperature superconductivity. Further, we identify that the electronic states at the vHs are composed of strongly hybridized La f and H s orbitals, giving rise to a peculiar characteristic of electrical charges with anionic La and both anionic and cationic H species. Consequently, a large number of electronic states at the vHs are strongly coupled to the H-derived high-frequency phonon modes that are induced via the unusual, intricate bonding network of LaH10, therefore yielding a high T-c. Our findings elucidate the microscopic mechanism of the observed high-T-c BCS-type superconductivity in LaH10, which can be generic to another recently observed high-T-c hydride H3S.en_US
dc.description.sponsorshipWe are grateful to Professor Yanming Ma for his introduction of the present topic. We also thank Professor Y. Jia for his support. This work was supported by the National Research Foundation of Korea (NRF) Grant funded by the Korean Government (Grants No. 2019R1A2C1002975, No. 2016K1A4A3914691, and No. 2015M3D1A1070609). The calculations were performed by the KISTI Supercomputing Center through the Strategic Support Program (Program No. KSC-2018-CRE-0063) for the supercomputing application research and by the High Performance Computational Center of Henan University.en_US
dc.language.isoenen_US
dc.publisherAMER PHYSICAL SOCen_US
dc.subjectTRANSITIONen_US
dc.subjectHYDROGENen_US
dc.titleMicroscopic mechanism of room-temperature superconductivity in compressed LaH10en_US
dc.typeArticleen_US
dc.relation.no14-
dc.relation.volume99-
dc.identifier.doi10.1103/PhysRevB.99.140501-
dc.relation.page140501-140504-
dc.relation.journalPHYSICAL REVIEW B-
dc.contributor.googleauthorLiu, Liangliang-
dc.contributor.googleauthorWang, Chongze-
dc.contributor.googleauthorYi, Seho-
dc.contributor.googleauthorKim, Kun Woo-
dc.contributor.googleauthorKim, Jaeyong-
dc.contributor.googleauthorCho, Jun-Hyung-
dc.relation.code2019002560-
dc.sector.campusS-
dc.sector.daehakCOLLEGE OF NATURAL SCIENCES[S]-
dc.sector.departmentDEPARTMENT OF PHYSICS-
dc.identifier.pidkimjy-
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COLLEGE OF NATURAL SCIENCES[S](자연과학대학) > PHYSICS(물리학과) > Articles
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