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Propagation of Dirac waves through various temporal interfaces, slabs, and crystalsoa mark
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Publication Year
2023-04-01
Publisher
American Physical Society
Citation
Physical Review Research, Vol.5
Mesh Keyword
Dirac conesDirac's equationFermi velocitiesPropagation of electromagnetic wavesPseudospinQuasiparticlesScalar and vector potentialsScattering co-efficientTemporal variationVelocity potentials
All Science Classification Codes (ASJC)
Physics and Astronomy (all)
Abstract
We investigate the influence of the temporal variations of various medium parameters on the propagation of Dirac-type waves in materials where the quasiparticles are described by a generalized version of the pseudospin-1/2 Dirac equation. Our considerations also include the propagation of electromagnetic waves in metamaterials with the Dirac-type dispersion. We focus on the variations of the scalar and vector potentials, mass, Fermi velocity, and tilt velocity describing the Dirac cone tilt. We derive the scattering coefficients associated with the temporal interfaces and slabs analytically and find that the temporal scattering is caused by the changes of the mass, Fermi velocity, and vector potential, but does not arise from the changes of the scalar potential and tilt velocity. We also explore the conditions under which the temporal Brewster effect and total interband transition occur and calculate the change in total wave energy. We examine bilayer Dirac temporal crystals where parameters switch between two different sets of values periodically and prove that these systems do not have momentum gaps. Finally, we assess the potential for observing these temporal scattering effects in experiments.
ISSN
2643-1564
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33492
DOI
https://doi.org/10.1103/physrevresearch.5.023162
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Type
Article
Funding
This research was supported through a National Research Foundation of Korea Grant (Grant No. NRF-2022R1F1A1074463) funded by the Korean Government. It was also supported by the Basic Science Research Program through the National Research Foundation of Korea funded by the Ministry of Education (Grant No. NRF-2021R1A6A1A10044950) and by the Global Frontier Program (Grant No. 2014M3A6B3063708).
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Kim, Kihong  Image
Kim, Kihong 김기홍
Department of Physics
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