A gated quantum dot far in the strong-coupling regime of cavity-QED at optical frequencies
Daniel Najer, Immo S\"ollner, Pavel Sekatski, Vincent Dolique,, Matthias C. L\"obl, Daniel Riedel, R\"udiger Schott, Sebastian Starosielec,, Sascha R. Valentin, Andreas D. Wieck, Nicolas Sangouard, Arne Ludwig, and, Richard J. Warburton

TL;DR
This paper demonstrates a semiconductor quantum dot embedded in a high-Q microcavity achieving strong light-matter coupling at optical frequencies, enabling quantum optical phenomena like vacuum Rabi oscillations and photon blockade, with potential for quantum information applications.
Contribution
The work reports the first realization of a solid-state quantum dot in a microcavity with ultra-high Q-factor and strong coupling parameters, matching theoretical models and enabling quantum photonic functionalities.
Findings
Observation of vacuum Rabi oscillations in the time domain
Demonstration of photon blockade at a one-photon resonance
Quantitative agreement with the Jaynes-Cummings model
Abstract
The strong-coupling regime of cavity-quantum-electrodynamics (cQED) represents light-matter interaction at the fully quantum level. Adding a single photon shifts the resonance frequencies, a profound nonlinearity. cQED is a test-bed of quantum optics and the basis of photon-photon and atom-atom entangling gates. At microwave frequencies, success in cQED has had a transformative effect. At optical frequencies, the gates are potentially much faster and the photons can propagate over long distances and be easily detected, ideal features for quantum networks. Following pioneering work on single atoms, solid-state implementations are important for developing practicable quantum technology. Here, we embed a semiconductor quantum dot in a microcavity. The microcavity has a -factor close to and contains a charge-tunable quantum dot with close-to-transform-limited optical…
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Taxonomy
TopicsStrong Light-Matter Interactions · Semiconductor Quantum Structures and Devices · Semiconductor Lasers and Optical Devices
