Resonance fluorescence from a coherently driven semiconductor quantum dot in a cavity
arXiv:0707.0656 · doi:10.1103/PhysRevLett.99.187402
Abstract
We show that resonance fluorescence, i.e. the resonant emission of a coherently driven two-level system, can be realized with a semiconductor quantum dot. The dot is embedded in a planar optical micro-cavity and excited in a wave-guide mode so as to discriminate its emission from residual laser scattering. The transition from the weak to the strong excitation regime is characterized by the emergence of oscillations in the first-order correlation function of the fluorescence, g(t), as measured by interferometry. The measurements correspond to a Mollow triplet with a Rabi splitting of up to 13.3 micro eV. Second-order-correlation measurements further confirm non-classical light emission.
5 pages, 4 figures
References in corpus (3)
Cited by in corpus (11)
- Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence
- Measurement of Autler-Townes and Mollow transitions in a strongly driven superconducting qubit
- Prospects for measurement-based quantum computing with solid state spins
- Observation of dressed excitonic states in a single quantum dot
- Coulomb interactions in single, charged self-assembled quantum dots: radiative lifetime and recombination energy
- Emission spectrum of a dressed exciton-biexciton complex in a semiconductor quantum dot
- Resonant excitonic emission of a single quantum dot in the Rabi regime
- A Single Charged Quantum Dot in a Strong Optical Field: Absorption, Gain, and the AC Stark Effect
- Dressed excitonic states and quantum interference in a three-level quantum dot ladder system
- Investigations of a coherently driven semiconductor optical cavity QED system
- Optical Spin Initialization and Non-Destructive Measurement in a Quantum Dot Molecule