Paper
28 May 2014 Deterministic generation of many-photon GHZ states using quantum dots in a cavity
Michael N. Leuenberger, Mikhail Erementchouk
Author Affiliations +
Abstract
Compared to classical light sources, quantum sources based on N00N states consisting of N photons achieve an N-times higher phase sensitivity, giving rise to super-resolution.1, 2, 3 N00N-state creation schemes based on linear optics and projective measurements only have a success probability p that decreases exponentially with N,4, 5, 6 e.g. p = 4.4x10-14 for N = 20.7 Feed-forward improves the scaling but N fluctuates nondeterministically in each attempt.8, 9 Schemes based on parametric down-conversion suffer from low production efficiency and low fidelity.9 A recent scheme based on atoms in a cavity combines deterministic time evolution, local unitary operations, and projective measurements.10 Here we propose a novel scheme based on the off-resonant interaction of N photons with four semiconductor quantum dots (QDs) in a cavity to create GHZ states, also called polarization N00N states, deterministically with p = 1 and fidelity above 90% for N≤ 60, without the need of any projective measurement or local unitary operation. Using our measure we obtain maximum N-photon entanglement EN = 1 for arbitrary N. Our method paves the way to the miniaturization of N00N and GHZ-state sources to the nanoscale regime, with the possibility to integrate them on a computer chip based on semiconductor materials.
© (2014) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Michael N. Leuenberger and Mikhail Erementchouk "Deterministic generation of many-photon GHZ states using quantum dots in a cavity", Proc. SPIE 9123, Quantum Information and Computation XII, 91230I (28 May 2014); https://doi.org/10.1117/12.2050905
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Photons

Electroluminescent displays

Quantum dots

Polarization

Chemical species

Magnetism

Excitons

RELATED CONTENT

Single polariton nonlinear Faraday rotation
Proceedings of SPIE (January 01 1900)
Fine and hyperfine structure of quantum dot excitons
Proceedings of SPIE (October 21 2004)
Twin photons from small quantum dots
Proceedings of SPIE (July 25 2003)

Back to Top