4.6 Article

Purcell-enhanced single-photon emission from a strain-tunable quantum dot in a cavity-waveguide device

Journal

APPLIED PHYSICS LETTERS
Volume 117, Issue 25, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/5.0033213

Keywords

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Funding

  1. Deutsche Forschungsgemeinschaft (DFG) [MI 500/32-1]
  2. Austrian Science Fund (FWF) under the DACH program [I 4320-N36]
  3. Linz Institute of Technology (LIT)
  4. State of Upper Austria
  5. LIT Lab for secure and correct systems

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On-chip quantum photonics is a promising route toward the implementation of complex photonic architectures on a small footprint. Therefore, different photonic components demonstrated for off-chip operation must be realized in an integrated manner. An essential building block for the realization of this goal is the integration of efficient on-demand single-photon sources within waveguide circuits. Here, we address this challenge by demonstrating the Purcell-enhanced single-photon emission from an In(Ga)As quantum dot coupled to a high-Q cavity-waveguide device. The combination with a piezoelectric actuator further enables the strain-induced emission energy tuning of the quantum dot as well as the cavity mode. We observe wavelength shifts up to 0.85nm for the quantum dot, with a differential tuning factor of four between emitter and cavity. This allows for the full compensation of the spectral mismatch between a selected quantum dot and the cavity resonance. A nearly twofold enhancement of the spontaneous emission rate is observed at resonance with the on-demand generation of single photons. This demonstration of a strain-tunable emitter in a waveguide-coupled cavity device represents an essential building block for large scale quantum photonic circuits, especially if combined in the future with miniaturization approaches based on recently developed micromachined piezoelectric actuators.

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