Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/131387
Title: Lattice dynamics and topological surface phonon states in cuprous oxide Cu2 O
Authors: Wang, Z.
Zhou, W.
Rudenko, A. N.
Yuan, S.
Issue Date: 2022
Publisher: American Physical Society
Citation: Wang, Z, Zhou, W, Rudenko, AN & Yuan, S 2021, 'Lattice dynamics and topological surface phonon states in cuprous oxide Cu2 O', Physical Review B, Том. 103, № 19, 195137. https://doi.org/10.1103/PhysRevB.103.195137
Wang, Z., Zhou, W., Rudenko, A. N., & Yuan, S. (2021). Lattice dynamics and topological surface phonon states in cuprous oxide Cu2 O. Physical Review B, 103(19), [195137]. https://doi.org/10.1103/PhysRevB.103.195137
Abstract: The topological phonon state of quantum matter is an emerging field that has been attracting considerable interest. For instance, Weyl phonons in transition-metal monosilicides have been proposed theoretically and identified experimentally. However, topological phonon nodal net states are not well studied due to the lack of realistic materials. Here, based on first-principles calculations and effective model analysis, we propose an existing material - cuprous oxide - to host the nodal net phonons. The nontrivial phonon surface states and uncovered phononic arcs are clearly visible on k-resolved phonon spectra, which are amenable to experimental detection. Our findings offer a possible platform for realizing topologically nontrivial phonon states and their applications. © 2021 American Physical Society.
Keywords: CALCULATIONS
COPPER OXIDES
CRYSTAL LATTICES
QUANTUM THEORY
TOPOLOGY
TRANSITION METALS
CUPROUS OXIDE
FIRST-PRINCIPLES CALCULATION
MODEL ANALYSIS
PHONON SPECTRUM
QUANTUM MATTER
REALISTIC MATERIALS
SURFACE PHONON
PHONONS
URI: http://elar.urfu.ru/handle/10995/131387
Access: info:eu-repo/semantics/openAccess
RSCI ID: 46788504
SCOPUS ID: 85107112346
WOS ID: 000655878000005
PURE ID: 22121261
2c878729-cb82-4da2-aef6-aed8b92e87a8
ISSN: 2469-9950
DOI: 10.1103/PhysRevB.103.195137
Sponsorship: Natural Science Foundation of Hubei Province, (2020CFA041)
National Key Research and Development Program of China, NKRDPC, (2018YFA0305800)
This work is supported by the National Key R&D Program of China (Grant No. 2018YFA0305800) and Natural Science Foundation of Hubei Province, China (2020CFA041). Numerical calculations presented in this paper have been performed on the supercomputing system in the Supercomputing Center of Wuhan University.
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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