Fano resonances in optical spectra of semiconductor quantum wells driven by an oscillating field
arXiv:2006.14296 · doi:10.1364/OL.410091
Abstract
Optical spectra of semiconductor quantum wells driven by an off-resonant oscillating field are studied theoretically. Due to the dynamical stabilization effect, the field induces the quasi-stationary electron states confined at repulsive scatterers and immersed into the continuum of states of conduction electrons. As a result, the Fano resonances in the spectra of interband optical transitions appear near the energies of the quasi-stationary states.
Published version
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- Floquet engineering of excitons in semiconductor quantum dots
- Optically induced Kondo effect in semiconductor quantum wells
- Optically induced hybrid Bose-Fermi system in quantum wells with different charge carriers
- All-optical control of excitons in semiconductor quantum wells
- Electronic states bound by repulsive potentials in graphene irradiated by a circularly polarized electromagnetic field