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Trapped Ion Quantum Computing
Stability of the Quantum Coherent Superradiant States in Relation to Exciton-Phonon Interactions and the Fundamental Soliton in Hybrid Perovskites
arXiv
Authors: A. A. Gladkij, N. A. Veretenov, N. N. Rosanov, B. A. Malomed, V. Al. Osipov, B. D. Fainberg
Year
2025
Paper ID
17595
Status
Preprint
Abstract Read
~2 min
Abstract Words
260
Citations
N/A
Abstract
The use of macroscopic coherent quantum states at room temperature is crucial in modern quantum technologies. In light of recent experiments demonstrating high-temperature superfluorescence in hybrid perovskite thin films, in this work we investigate the stability of the superradiant state concerning exciton-phonon interactions. We focused on a quasi-2D Wannier exciton interacting with longitudinal optical (LO) phonons in polar crystals, as well as with acoustic phonons. Our study leads to the derivation of nonlinear equations in the coordinate space that govern the exciton wavefunction's coefficient in the single-exciton basis for the lowest exciton state, which translates to the complex-valued polarization. The resulting equations take the form of a 2D nonlocal nonlinear Schrodinger (NLS) equation. We perform a linear stability analysis of the plane wave solutions for the equations in question, which allows us to establish stability criteria. This analysis is particularly important for evaluating the stability of the superradiant state in the considered quasi-2D structures, as the superradiant state represents a specific case of the plane wave solution. Our findings indicate that, when the exciton interacts with LO phonons, a plane wave solution is modulationally stable, provided that the square of its amplitude does not exceed a critical intensity value defined by the exciton-LO phonon interaction parameters. Furthermore, interactions between the exciton and acoustic phonons reduce the intensity of modulationally stable waves compared to the case without such interactions. Our analytical results are corroborated by numerical calculations. We also numerically solve the 2D nonlocal NLS equation in the polar coordinates and obtain its fundamental soliton solution, which is stable.
Why This Paper Matters
- This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
- It adds a 2025 reference point for readers tracking recent quantum research.
- The use of macroscopic coherent quantum states at room temperature is crucial in modern quantum technologies.
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