Differential ultrafast all-optical switching of the resonances of a micropillar cavity
arXiv:1401.2137 · doi:10.1063/1.4896160
Abstract
We perform frequency- and time-resolved all-optical switching of a GaAs-AlAs micropillar cavity using an ultrafast pump-probe setup. The switching is achieved by two-photon excitation of free carriers. We track the cavity resonances in time with a high frequency resolution. The pillar modes exhibit simultaneous frequency shifts, albeit with markedly different maximum switching amplitudes and relaxation dynamics. These differences stem from the non-uniformity of the free carrier density in the micropillar, and are well understood by taking into account the spatial distribution of injected free carriers, their spatial diffusion and surface recombination at micropillar sidewalls.
4 pages, 3 figures
References in corpus (6)
- Dynamic release of trapped light from an ultrahigh-Q nanocavity via adiabatic frequency tuning
- Ambipolar diffusion of photo-excited carriers in bulk GaAs
- Ultrafast nonlocal control of spontaneous emission
- Spatial homogeneity of optically switched semiconductor photonic crystals and of bulk semiconductors
- Dynamical ultrafast all-optical switching of planar GaAs/AlAs photonic microcavities
- Optical characterization and selective addressing of the resonant modes of a micropillar cavity with a white light beam
Cited by in corpus (5)
- Electromagnetic wave propagation in spatially homogeneous yet smoothly time-varying dielectric media
- Coupled-mode theory for electromagnetic pulse propagation in dispersive media undergoing a spatio-temporal perturbation - exact derivation, numerical validation and peculiar wave mixing
- Generation of ultrashort (~10ps) spontaneous emission pulses by quantum dots in a switched optical microcavity
- Dynamical control of square microlaser emission via symmetry classes
- Scalable, chip-based optically-controlled gates for quantum information processing