Room-Temperature Exciton-Polariton Condensation in a Tunable Zero-Dimensional Microcavity
arXiv:1901.07403 · doi:10.1021/acsphotonics.7b00557
Abstract
We create exciton-polaritons in a zero-dimensional (0D) microcavity filled with organic ladder-type conjugated polymer in the strong light-matter interaction regime. Photonic confinement at wavelength scale is realized in the longitudinal direction by two dielectric Bragg mirrors and laterally by a sub-micron Gaussian-shaped defect. The cavity is separated into two parts allowing nanometer position control and enabling tuning of exciton and photon fractions of the polariton wavefunction. Polariton condensation is achieved with non-resonant, picosecond optical excitation at ambient conditions and evidenced by a threshold behavior with non-linear increase of the emission intensity, line narrowing and blue-shift of the emission peak. Furthermore, angular emission spectra show that condensation occurs in the ground state of the 0D-cavity, and first order coherence measurements reveal the coherent nature. These experiments open the door for polariton quantum fluids in complex external potentials at room temperature.
References in corpus (5)
- Quantum fluids of light
- Polariton laser using single micropillar GaAs-GaAlAs semiconductor cavities
- Engineering the spatial confinement of exciton-polaritons in semiconductors
- Coherence properties of the microcavity polariton condensate
- Zero-dimensional organic exciton-polaritons in tunable coupled Gaussian defect microcavities at room temperature
Cited by in corpus (8)
- Ultralow Threshold Polariton Condensate in a Monolayer Semiconductor Microcavity at Room Temperature
- Exciton-Polaritons in Uniaxially Aligned Organic Microcavities
- Room-temperature cavity exciton-polariton condensation in perovskite quantum dots
- In-situ tunable, room-temperature polariton condensation in individual states of a 1D topological lattice
- Thermalization rate of polaritons in strongly-coupled molecular systems
- Topological Frenkel Exciton-Polaritons in One-Dimensional Lattices of Strongly Coupled Cavities
- Modelling lattices of organic polaritons
- Direct determination of 2D Momentum Space from 2D Spatial Coherence of Light using a Modified Michelson Interferometer