Abstract:
A theory for propagation of polaritons in superlattices with resonant plasmon-exciton coupling is presented. A periodical superlattice consists of a finite number of cells with closely located a quantum well and a monolayer of metal nanoparticles. Under study is the spectrum of hybrid modes formed of the quasitwo- dimensional excitons of quantum wells and the dipole plasmons of metal particles. The problem of electrodynamics is solved by the method of Green’s functions with taking account of the resonant polarization of quantum wells and nanoparticles in a self-consistent approximation. The effective polarizability of spheroidal particles occupying a square lattice is calculated with taking into consideration the local-field effect of dipole plasmons of the layer and their images caused by the excitonic polarization of nearest quantum well. Optical reflection spectra of superlattices with GaAs/AlGaAs quantum wells and silver particles are numerically analyzed. Special attention is paid to the superradiant regime originated in the Bragg diffraction of polaritons in superlattice. Superradiance is investigated separately for plasmons and excitons, and then for hybrid plasmonexcitonic polaritons. It is demonstrated that the broad spectrum of reflectance associated with plasmons depends on the number of cells in superlattice, and it has a narrow spectral dip in the range of plasmon-excitonic Rabi splitting.
Citation:
V. A. Kosobukin, “Plasmon-excitonic polaritons in superlattices”, Fizika Tverdogo Tela, 59:5 (2017), 972–979; Phys. Solid State, 59:5 (2017), 999–1007
\Bibitem{Kos17}
\by V.~A.~Kosobukin
\paper Plasmon-excitonic polaritons in superlattices
\jour Fizika Tverdogo Tela
\yr 2017
\vol 59
\issue 5
\pages 972--979
\mathnet{http://mi.mathnet.ru/ftt9590}
\crossref{https://doi.org/10.21883/FTT.2017.05.44389.365}
\elib{https://elibrary.ru/item.asp?id=29405098}
\transl
\jour Phys. Solid State
\yr 2017
\vol 59
\issue 5
\pages 999--1007
\crossref{https://doi.org/10.1134/S1063783417050171}
Linking options:
https://www.mathnet.ru/eng/ftt9590
https://www.mathnet.ru/eng/ftt/v59/i5/p972
This publication is cited in the following 6 articles:
Arash Rahimi-Iman, Springer Series in Solid-State Sciences, 196, Semiconductor Photonics of Nanomaterials and Quantum Structures, 2021, 61
V. A. Kosobukin, “Coulomb plasmon-excitons in planar nanostructures metal-semiconductor”, Phys. Solid State, 63:4 (2021), 566–576
Arash Rahimi-Iman, Springer Series in Optical Sciences, 229, Polariton Physics, 2020, 1
A. S. Abramov, D. A. Evseev, D. I. Sementsov, “Surface plasmon polaritons in a graphene–semiconductor–graphene thin film”, Phys. Solid State, 61:8 (2019), 1502–1508
V. A. Kosobukin, “Plasmon-excitonic polaritons in metal-semiconductor nanostructures with quantum wells”, Semiconductors, 52:5 (2018), 579–582
V. A. Kosobukin, “Spectroscopy of plasmon-excitons in semiconductor–metal nanostructures”, Phys. Solid State, 60:8 (2018), 1653–1659