Theory for Bose-Einstein condensation of light in nano-fabricated semiconductor microcavities
arXiv:1505.01732 · doi:10.1103/PhysRevA.94.013615
Abstract
We construct a theory for Bose-Einstein condensation of light in nano-fabricated semiconductor microcavities. We model the semiconductor by one conduction and one valence band which consist of electrons and holes that interact via a Coulomb interaction. Moreover, we incorporate screening effects by using a contact interaction with the scattering length for a Yukawa potential and describe in this manner the crossover from exciton gas to electron-hole plasma as we increase the excitation level of the semiconductor. We then show that the dynamics of the light in the microcavities is damped due to the coupling to the semiconductor. Furthermore, we demonstrate that on the electron-hole plasma side of the crossover, which is relevant for the Bose-Einstein condensation of light, this damping can be described by a single dimensionless damping parameter that depends on the external pumping. Hereafter, we propose to probe the superfluidity of light in these nano-fabricated semiconductor microcavities by making use of the differences in the response in the normal or superfluid phase to a sudden rotation of the trap. In particular, we determine frequencies and damping of the scissors modes that are excited in this manner. Moreover, we show that a distinct signature of the dynamical Casimir effect can be observed in the density-density correlations of the excited light fluid.
References in corpus (9)
- Bose-Einstein condensation of photons in an optical microcavity
- An acoustic analog to the dynamical Casimir effect in a Bose-Einstein condensate
- Hydrodynamic nucleation of vortices and solitons in a resonantly excited polariton superfluid
- Experimental Evidence for Inhomogeneous-Pumping and Energy-Dependent Effects in Photon Bose-Einstein Condensation
- Interaction Effects on Number Fluctuations in a Bose-Einstein Condensate of Light
- Superflow of resonantly driven polaritons against a defect
- Superfluid Motion of Light
- Optomechanical signature of a frictionless flow of superfluid light
- Phase fluctuations and first-order correlation functions of dissipative Bose-Einstein condensates
Cited by in corpus (9)
- Decondensation in non-equilibrium photonic condensates: when less is more
- Interplay of coherent and dissipative dynamics in condensates of light
- Explaining Observed Stability of Excitons in Highly Excited CdSe Nanoplatelets
- Proposal for an analog Schwarzschild black hole in condensates of light
- Phase-space views into dye-microcavity thermalised and condensed photons
- Bose-Einstein condensation of photons from the thermodynamic limit to small photon numbers
- Metamorphosis of Goldstone and Soft Fluctuation Modes in Polariton Lasers
- Terahertz Spectroscopy of Semiconductor Microcavity Lasers I: Photon Lasers
- Analogue gravitational lensing in optical Bose-Einstein condensates