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  4. Spin configuration of an array of quantum rings controlled by cavity photons
 
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Spin configuration of an array of quantum rings controlled by cavity photons

Journal
Physical Review B
Journal Volume
111
Journal Issue
11
ISSN
2469-9950
2469-9969
Date Issued
2025-03-11
Author(s)
Gudmundsson, Vidar
Mughnetsyan, Vram
Goan, Hsi-Sheng  
Chai, Jeng-Da  
Abdullah, Nzar Rauf
Tang, Chi-Shung
Moldoveanu, Valeriu
Manolescu, Andrei
DOI
10.1103/physrevb.111.115304
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/730976
Abstract
We model a change of the spin configuration in a two-dimensional square array, or a lateral superlattice, of quantum rings in an external perpendicular homogeneous magnetic field. The electron system is placed in a circular cylindrical far-infrared photon cavity with a single circularly symmetric photon mode. Our numerical results reveal that the spin ordering of the two-dimensional electron gas in each quantum ring can be influenced or controlled by the electron-photon coupling strength and the energy of the photons. The Coulomb interaction between the electrons is described by a spin-density functional approach, but the para- and diamagnetic electron-photon interactions are modeled via a configuration interaction formalism in a truncated many-body Fock-space, which is updated in each iteration step of the density functional approach. In the absence of external electromagnetic pulses this reordering of the spin configuration is replicated in the orbital magnetization of the rings. The change in the spin configuration can be suppressed by a strong electron-photon interaction. In addition, fluctuations in the spin configuration are found in dynamical calculations, where the system is excited by a time-dependent coupling scheme to a cylindrical cavity mode for emphasizing the diamagnetic electron-photon interaction not leading to simple electrical dipole oscillations. The diamagnetic interaction is enhanced by the rotational electric field of the particular cavity mode.
SDGs

[SDGs]SDG7

Publisher
American Physical Society (APS)
Type
journal article

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