Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems

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Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems. / Kandelaki, Ervand; Rudner, Mark S.

I: Physical Review Letters, Bind 121, Nr. 3, 036801, 16.07.2018.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Kandelaki, E & Rudner, MS 2018, 'Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems', Physical Review Letters, bind 121, nr. 3, 036801. https://doi.org/10.1103/PhysRevLett.121.036801

APA

Kandelaki, E., & Rudner, M. S. (2018). Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems. Physical Review Letters, 121(3), [036801]. https://doi.org/10.1103/PhysRevLett.121.036801

Vancouver

Kandelaki E, Rudner MS. Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems. Physical Review Letters. 2018 jul. 16;121(3). 036801. https://doi.org/10.1103/PhysRevLett.121.036801

Author

Kandelaki, Ervand ; Rudner, Mark S. / Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems. I: Physical Review Letters. 2018 ; Bind 121, Nr. 3.

Bibtex

@article{df6d7b85c4914ffb81b646e0ef02696f,
title = "Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems",
abstract = "We study transient dynamics in a two-dimensional system of interacting Dirac fermions subject to a quenched drive with circularly polarized light. In the absence of interactions, the drive opens a gap at the Dirac point in the quasienergy spectrum, inducing nontrivial band topology. We investigate the dynamics of this gap opening process, taking into account the essential role of electron-electron interactions. Crucially, scattering due to interactions (1) induces dephasing, which erases memory of the system's prequench state and yields the intrinsic timescale for gap emergence, and (2) provides a mechanism for the system to absorb energy of the drive, leading to heating which must be mitigated to ensure the success of Floquet band engineering. We characterize the gap opening process via the system's generalized spectral function and correlators probed by photoemission experiments, and we identify a parameter regime at moderate driving frequencies where a hierarchy of timescales allows a well-defined Floquet gap to be produced and studied before the deleterious effects of heating set in.",
author = "Ervand Kandelaki and Rudner, {Mark S.}",
note = "[Qdev]",
year = "2018",
month = jul,
day = "16",
doi = "10.1103/PhysRevLett.121.036801",
language = "English",
volume = "121",
journal = "Physical Review Letters",
issn = "0031-9007",
publisher = "American Physical Society",
number = "3",

}

RIS

TY - JOUR

T1 - Many-Body Dynamics and Gap Opening in Interacting Periodically Driven Systems

AU - Kandelaki, Ervand

AU - Rudner, Mark S.

N1 - [Qdev]

PY - 2018/7/16

Y1 - 2018/7/16

N2 - We study transient dynamics in a two-dimensional system of interacting Dirac fermions subject to a quenched drive with circularly polarized light. In the absence of interactions, the drive opens a gap at the Dirac point in the quasienergy spectrum, inducing nontrivial band topology. We investigate the dynamics of this gap opening process, taking into account the essential role of electron-electron interactions. Crucially, scattering due to interactions (1) induces dephasing, which erases memory of the system's prequench state and yields the intrinsic timescale for gap emergence, and (2) provides a mechanism for the system to absorb energy of the drive, leading to heating which must be mitigated to ensure the success of Floquet band engineering. We characterize the gap opening process via the system's generalized spectral function and correlators probed by photoemission experiments, and we identify a parameter regime at moderate driving frequencies where a hierarchy of timescales allows a well-defined Floquet gap to be produced and studied before the deleterious effects of heating set in.

AB - We study transient dynamics in a two-dimensional system of interacting Dirac fermions subject to a quenched drive with circularly polarized light. In the absence of interactions, the drive opens a gap at the Dirac point in the quasienergy spectrum, inducing nontrivial band topology. We investigate the dynamics of this gap opening process, taking into account the essential role of electron-electron interactions. Crucially, scattering due to interactions (1) induces dephasing, which erases memory of the system's prequench state and yields the intrinsic timescale for gap emergence, and (2) provides a mechanism for the system to absorb energy of the drive, leading to heating which must be mitigated to ensure the success of Floquet band engineering. We characterize the gap opening process via the system's generalized spectral function and correlators probed by photoemission experiments, and we identify a parameter regime at moderate driving frequencies where a hierarchy of timescales allows a well-defined Floquet gap to be produced and studied before the deleterious effects of heating set in.

U2 - 10.1103/PhysRevLett.121.036801

DO - 10.1103/PhysRevLett.121.036801

M3 - Journal article

C2 - 30085807

AN - SCOPUS:85050404903

VL - 121

JO - Physical Review Letters

JF - Physical Review Letters

SN - 0031-9007

IS - 3

M1 - 036801

ER -

ID: 200830564