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Journal article · Preprint article

Observation of resonance fluorescence and the Mollow triplet from a coherently driven site-controlled quantum dot

In Optica 2015, Volume 2, Issue 12, pp. 1072-1077
From

Universität Würzburg1

Department of Photonics Engineering, Technical University of Denmark2

Quantum and Laser Photonics, Department of Photonics Engineering, Technical University of Denmark3

Technische Universität Berlin4

Department of Micro- and Nanotechnology, Technical University of Denmark5

Resonant excitation of solid state quantum emitters has the potential to deterministically excite a localized exciton while ensuring a maximally coherent emission. In this work, we demonstrate the coherent coupling of an exciton localized in a lithographically positioned, site-controlled semiconductor quantum dot to an external resonant laser field.

For strong continuous-wave driving we observe the characteristic Mollow triplet and analyze the Rabi splitting and sideband widths as a function of driving strength and temperature. The sideband widths increase linearly with temperature and the square of the driving strength, which we explain via coupling of the exciton to longitudinal acoustic phonons.

We also find an increase of the Rabi splitting with temperature, which indicates a temperature induced delocalization of the excitonic wave function resulting in an increase of the oscillator strength. Finally, we demonstrate coherent control of the exciton excited state population via pulsed resonant excitation and observe a damping of the Rabi oscillations with increasing pulse area, which is consistent with our exciton-photon coupling model.

We believe that our work outlines the possibility to implement fully scalable platforms of solid state quantum emitters. The latter is one of the key prerequisites for more advanced, integrated nanophotonic quantum circuits.

Language: English
Year: 2015
Pages: 1072-1077
ISSN: 23342536
Types: Journal article and Preprint article
DOI: 10.1364/optica.2.001072
ORCIDs: Gregersen, Niels and Mørk, Jesper

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