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Localized modes in linear and nonlinear octagonal-diamond lattices with two flat bands
Indexado
WoS WOS:000565701800001
Scopus SCOPUS_ID:85091831817
DOI 10.1103/PHYSREVA.102.023532
Año 2020
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



We consider a two-dimensional octagonal-diamond network with a fine-tuned diagonal coupling inside the diamond-shaped unit cell. Its linear spectrum exhibits coexistence of two dispersive bands (DBs) and two flat bands (FBs), touching one of the DBs embedded between them. Analogous to the kagome lattice, one of the FBs will constitute the ground state of the system for a proper sign choice of the Hamiltonian. The system is characterized by two different flat-band fundamental octagonal compactons, originating from the destructive interference of fully geometric nature. In the presence of a nonlinear amplitude (on-site) perturbation, the singleoctagon linear modes continue into one-parameter families of nonlinear compact modes with the same amplitude and phase structure. However, numerical stability analysis indicates that all strictly compact nonlinear modes are unstable, either purely exponentially or with oscillatory instabilities, for weak and intermediate nonlinearities and sufficiently large system sizes. Stabilization may appear in certain ranges for finite systems and, for the compacton originating from the band at the spectral edge, also in a regime of very large focusing nonlinearities. In contrast to the kagome lattice, the latter compacton family will become unstable already for arbitrarily weak defocusing nonlinearity for large enough systems. We show analytically the existence of a critical system size consisting of 12 octagon rings, such that the ground state for weak defocusing nonlinearity is a stable single compacton for smaller systems, and a continuation of a nontrivial, noncompact linear combination of single compacton modes for larger systems. Investigating generally the different nonlinear localized (noncompact) mode families in the semi-infinite gap bounded by this FB, we find that, for increasing (defocusing) nonlinearity the stable ground state will continuously develop into an exponentially localized mode with two main peaks in antiphase. At a critical nonlinearity strength a symmetry-breaking pitchfork bifurcation appears, so that the stable ground state is single peaked for larger defocusing nonlinearities. We also investigate numerically the mobility of localized modes in this regime and find that the considered modes are generally immobile both with respect to axial and diagonal phase-gradient perturbations.

Revista



Revista ISSN
Physical Review A 2469-9926

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Disciplinas de Investigación



WOS
Physics, Atomic, Molecular & Chemical
Optics
Scopus
Atomic And Molecular Physics, And Optics
SciELO
Sin Disciplinas

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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 Stojanovic, M. G. - Univ Belgrade - Serbia
Institut za nuklearne nauke Vinca - Serbia
2 Krasic, M. Stojanovic - Univ Nis - Serbia
University of Niš - Serbia
3 Maluckov, A. Mujer Univ Belgrade - Serbia
Inst Basic Sci IBS - Corea del Sur
Institut za nuklearne nauke Vinca - Serbia
Institute for Basic Science, Daejeon - Corea del Sur
4 Johansson, Magnus Hombre Linkoping Univ - Suecia
Linköpings universitet - Suecia
5 Salinas, Ignacio Hombre Universidad de Chile - Chile
6 VICENCIO-POBLETE, RODRIGO ANDRES Hombre Universidad de Chile - Chile
7 Stepic, M. Hombre Univ Belgrade - Serbia
Institut za nuklearne nauke Vinca - Serbia

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Financiamiento



Fuente
Fondo Nacional de Desarrollo Científico y Tecnológico
Ministry of Education, Science and Technological Development of Republic of Serbia
Fondo Nacional de Desarrollo Científico, Tecnológico y de Innovación Tecnológica
FONDECYT grant
Programa ICM Millennium Institute for Research in Optics (MIRO)
Ministarstvo Prosvete, Nauke i Tehnoloskog Razvoja

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Agradecimientos



Agradecimiento
This work was supported in part by Programa ICM Millennium Institute for Research in Optics (MIRO), FONDECYT Grant No. 1191205 and the Ministry of Education, Science and Technological Development of Republic of Serbia (Project III45010).
This work was supported in part by Programa ICM Millennium Institute for Research in Optics (MIRO), FONDECYT Grant No. 1191205 and the Ministry of Education, Science and Technological Development of Republic of Serbia (Project III45010).

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