On‐Demand Indistinguishable and Entangled Photons Using Tailored Cavity Designs

Author:

Bauch David1ORCID,Siebert Dustin2,Jöns Klaus D.13,Förstner Jens2,Schumacher Stefan134

Affiliation:

1. Department of Physics and Center for Optoelectronics and Photonics Paderborn (CeOPP) Paderborn University Warburger Strasse 100 33098 Paderborn Germany

2. Electrical Engineering Department and Center for Optoelectronics and Photonics Paderborn (CeOPP) Paderborn University Warburger Str. 100 33098 Paderborn Germany

3. Institute for Photonic Quantum Systems (PhoQS) Paderborn University 33098 Paderborn Germany

4. Wyant College of Optical Sciences University of Arizona Tucson AZ 85721 USA

Abstract

AbstractThe biexciton‐exciton emission cascade commonly used in quantum‐dot systems to generate polarization entanglement yields photons with intrinsically limited indistinguishability. In the present work, it focuses on the generation of pairs of photons with high degrees of polarization entanglement and simultaneously high indistinguishability. It achieves this goal by selectively reducing the biexciton lifetime with an optical resonator. It demonstrates that a suitably tailored circular Bragg reflector fulfills the requirements of sufficient selective Purcell enhancement of biexciton emission paired with spectrally broad photon extraction and twofold degenerate optical modes. The in‐depth theoretical study combines (i) the optimization of realistic photonic structures solving Maxwell's equations from which model parameters are extracted as input for (ii) microscopic simulations of quantum‐dot cavity excitation dynamics with full access to photon properties. It reports non‐trivial dependencies on system parameters and use the predictive power of the combined theoretical approach to determine the optimal range of Purcell enhancement that maximizes indistinguishability and entanglement to near unity values, here specifically for the telecom C‐band at 1550 nm.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Condensed Matter Physics,Mathematical Physics,Nuclear and High Energy Physics,Electronic, Optical and Magnetic Materials,Statistical and Nonlinear Physics

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