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March 12, 2026Advanced Quantum Technologies0 citationsOpen Access

Enhanced Spectral Range of Strain‐Induced Tuning of Quantum Dots in Circular Bragg Grating Cavities

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IGIvan GamovMSMartin SauterSHSamuel Huber

Key Points

  • This research aims to improve the tunability of quantum dots embedded in circular Bragg grating cavities using strain-inducing techniques.
  • Fabrication of indium arsenide quantum dots on gallium arsenide nanomembranes
  • Use of atomic layer deposition to fill circular Bragg grating trenches with aluminum oxide
  • Finite element analysis to study strain effects due to cavity geometry
  • Restoration of up to 95% strain tunability compared to conventional planar structures
  • Coated devices achieve 98%-99% strain-tuning efficiency across various stiffnesses
  • CBG geometry enhances emission brightness while maintaining tunability.

Abstract

ABSTRACT Tunable sources of entangled and single photons are essential for implementing entanglement‐based quantum information protocols, as quantum teleportation and entanglement swapping depend on photon indistinguishability. Tunable devices are fabricated from indium arsenide (InAs) quantum dots (QDs) embedded in gallium arsenide (GaAs) nanomembranes placed on monolithic piezoelectric substrates. Circular Bragg grating (CBG) resonators enhance emission brightness and exploit the Purcell effect; however, the inclusion of CBGs reduces strain‐mediated tunability compared to planar nanomembranes. A simple and effective solution is introduced: filling the CBG trenches with a stiff dielectric (aluminum oxide, Al 2 O 3 ) via atomic layer deposition (ALD) restores up to 95% of the tunability of planar structures. Finite element analysis (FEA) confirms that the tunability loss originates from bending in the device layers due to strain relief in the CBG geometry. Lowering the stiffness of intermediate layers between the QDs and the piezoelectric actuator, such as in bonding or reflector layers, further increases strain losses in uncoated CBGs. Coated devices maintain 98%–99% strain‐tuning efficiency across all simulated underlayer stiffnesses. The results demonstrate that advantageous optical cavity properties can be effectively combined with piezoelectric strain tuning, enabling scalable, bright, and tunable quantum light sources.

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Cite This Study

Gamov et al. (2026) studied this question.

synapsesocial.com/papers/69b25b5496eeacc4fcec9e66https://doi.org/10.1002/qute.202500954
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