Elementary excitations in the hybrid Bose-Fermi system induced by circularly polarized light in a two-dimensional gas of charge carriers with different masses
arXiv:2310.15864 · doi:10.1103/PhysRevB.108.155140
Abstract
We developed a theory describing elementary excitations in the Bose-Fermi system induced by circularly polarized light in a two-dimensional (2D) gas of charge carriers with different masses. In such a hybrid system, the Fermi subsystem is a degenerate Fermi gas, whereas the Bose subsystem is a condensate of the light-induced composite bosons consisting of two fermions (electrons or holes) with different effective masses. The interaction of the single-particle excitations and the collective excitations (plasmons) in the Fermi subsystem with the Bogoliubov collective modes (bogolons) in the Bose subsystem is analyzed. The renormalization and damping (lifetime) of the excitations are calculated, and the possibility of their experimental observation is discussed. The developed theory can be applied to describe 2D condensed-matter structures containing charge carriers with different effective masses, including transition metal dichalcogenide monolayers and semiconductor quantum wells.
Published version
References in corpus (22)
- Photovoltaic Hall effect in graphene
- k.p theory for two-dimensional transition metal dichalcogenide semiconductors
- Periodically-driven quantum systems: Effective Hamiltonians and engineered gauge fields
- Irradiated graphene as a tunable Floquet topological insulator
- Multiterminal Conductance of a Floquet Topological Insulator
- Floquet engineering of strongly-driven excitons in monolayer tungsten disulfide
- Induced interactions in a superfluid Bose-Fermi mixture
- Rotons in a hybrid Bose-Fermi system
- Floquet engineering of magnetic topological insulator MnBiTe films
- Resonance fluorescence from an asymmetric quantum dot dressed by a bichromatic electromagnetic field
- Calibration of Interaction Energy between Bose and Fermi Superfluids
- Quasi-particle Lifetime in a Mixture of Bose and Fermi Superfluids
- Chandrasekhar-Clogston limit and critical polarization in a Fermi-Bose superfluid mixture
- Strong coupling theory for the superfluidity of Bose-Fermi mixtures
- Atom-Dimer Scattering and Stability of Bose and Fermi Mixtures
- Engineering Floquet topological phases using elliptically polarized light
- Light-induced bound electron states in two-dimensional systems: Contribution to electron transport
- Electron pairing in nanostructures driven by an oscillating field
- Floquet theory of spin dynamics under circularly polarized light pulses
- Floquet band engineering with Bloch oscillations
- Chiral spin liquid state of strongly interacting bosons with a moat dispersion: a Monte Carlo simulation
- Interplay between collective modes in hybrid electron gas-superconductor structures