Fermionic vs. bosonic thermalization in the phonon-driven exciton dynamics: An analytic dimensionality study

Fuente: arXiv
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Main Authors: Katzer, Manuel, Selig, Malte, Knorr, Andreas
Format: Preprint
Published: 2023
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author Katzer, Manuel
Selig, Malte
Knorr, Andreas
author_facet Katzer, Manuel
Selig, Malte
Knorr, Andreas
contents Excitons are compound particles formed from an electron and a hole in semiconductors. The impact of this substructure on the phonon-exciton interaction is described by a closed system of microscopic scattering equations. To calculate the actual excitonic thermalization properties beyond the pure bosonic picture, this equation is derived directly from an electron-hole picture within the Heisenberg equation of motion framework. In addition to the well-known bosonic character of the compound particles, we identified processes of a repulsive, fermionic type, as well as attractive carrier exchange contributing to the scattering process. In this analytical study we give general statements about the thermalization of excitons in two and three dimensional semiconductors. We give insights on the strong dependence of the thermalization characteristics of the exciton Bohr radius and the thermalization wavelength. Above all, we analytically provide arguments why a bosonic behavior of excitons - such as an enhanced ground state occupation - requires the dominant phonon scattering to be quasielastic. Acoustic phonons tend to fulfil this, as each scattering event only takes small amounts of energy out of the distribution, while optical phonons tend to prevent macroscopic occupations of the lowest exciton state, since the Pauli repulsion between the individual carriers will then dominate the thermalization dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2310_00721
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Fermionic vs. bosonic thermalization in the phonon-driven exciton dynamics: An analytic dimensionality study
Katzer, Manuel
Selig, Malte
Knorr, Andreas
Mesoscale and Nanoscale Physics
Quantum Gases
Excitons are compound particles formed from an electron and a hole in semiconductors. The impact of this substructure on the phonon-exciton interaction is described by a closed system of microscopic scattering equations. To calculate the actual excitonic thermalization properties beyond the pure bosonic picture, this equation is derived directly from an electron-hole picture within the Heisenberg equation of motion framework. In addition to the well-known bosonic character of the compound particles, we identified processes of a repulsive, fermionic type, as well as attractive carrier exchange contributing to the scattering process. In this analytical study we give general statements about the thermalization of excitons in two and three dimensional semiconductors. We give insights on the strong dependence of the thermalization characteristics of the exciton Bohr radius and the thermalization wavelength. Above all, we analytically provide arguments why a bosonic behavior of excitons - such as an enhanced ground state occupation - requires the dominant phonon scattering to be quasielastic. Acoustic phonons tend to fulfil this, as each scattering event only takes small amounts of energy out of the distribution, while optical phonons tend to prevent macroscopic occupations of the lowest exciton state, since the Pauli repulsion between the individual carriers will then dominate the thermalization dynamics.
title Fermionic vs. bosonic thermalization in the phonon-driven exciton dynamics: An analytic dimensionality study
topic Mesoscale and Nanoscale Physics
Quantum Gases
url https://arxiv.org/abs/2310.00721