A deterministic and efficient source of frequency-polarization hyper-encoded photonic qubits

Fuente: arXiv
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Main Authors: Coste, N., Fioretto, D. A., Thomas, S. E., Wein, S. C., Ollivier, H., Wenniger, I. Maillette de Buy, Henry, A., Belabas, N., Harouri, A., Lemaitre, A., Sagnes, I., Somaschi, N., Krebs, O., Lanco, L., Senellart, P.
Format: Preprint
Published: 2024
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author Coste, N.
Fioretto, D. A.
Thomas, S. E.
Wein, S. C.
Ollivier, H.
Wenniger, I. Maillette de Buy
Henry, A.
Belabas, N.
Harouri, A.
Lemaitre, A.
Sagnes, I.
Somaschi, N.
Krebs, O.
Lanco, L.
Senellart, P.
author_facet Coste, N.
Fioretto, D. A.
Thomas, S. E.
Wein, S. C.
Ollivier, H.
Wenniger, I. Maillette de Buy
Henry, A.
Belabas, N.
Harouri, A.
Lemaitre, A.
Sagnes, I.
Somaschi, N.
Krebs, O.
Lanco, L.
Senellart, P.
contents The frequency or color of photons is an attractive degree of freedom to encode and distribute the quantum information over long distances. However, the generation of frequency-encoded photonic qubits has so far relied on probabilistic non-linear single-photon sources and inefficient gates. Here, we demonstrate the deterministic generation of photonic qubits hyper-encoded in frequency and polarization based on a semiconductor quantum dot in a cavity. We exploit the double dipole structure of a neutral exciton and demonstrate the generation of any quantum superposition in amplitude and phase, controlled by the polarization of the pump laser pulse. The source generates frequency-polarization single-photon qubits at a rate of 4 MHz corresponding to a generation probability at the first lens of 28 $\pm$ 2%, with a photon number purity > 98%. The photons show an indistinguishability > 91% for each dipole and 88% for a balanced quantum superposition of both. The density matrix of the hyper-encoded photonic state is measured by time-resolved polarization tomography, evidencing a fidelity to the target state of 94 $\pm$ 8% and concurrence of 77 $\pm$ 2%, here limited by frequency overlap in our device. Our approach brings the advantages of quantum dot sources to the field of quantum information processing based on frequency encoding.
format Preprint
id arxiv_https___arxiv_org_abs_2410_03454
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A deterministic and efficient source of frequency-polarization hyper-encoded photonic qubits
Coste, N.
Fioretto, D. A.
Thomas, S. E.
Wein, S. C.
Ollivier, H.
Wenniger, I. Maillette de Buy
Henry, A.
Belabas, N.
Harouri, A.
Lemaitre, A.
Sagnes, I.
Somaschi, N.
Krebs, O.
Lanco, L.
Senellart, P.
Quantum Physics
The frequency or color of photons is an attractive degree of freedom to encode and distribute the quantum information over long distances. However, the generation of frequency-encoded photonic qubits has so far relied on probabilistic non-linear single-photon sources and inefficient gates. Here, we demonstrate the deterministic generation of photonic qubits hyper-encoded in frequency and polarization based on a semiconductor quantum dot in a cavity. We exploit the double dipole structure of a neutral exciton and demonstrate the generation of any quantum superposition in amplitude and phase, controlled by the polarization of the pump laser pulse. The source generates frequency-polarization single-photon qubits at a rate of 4 MHz corresponding to a generation probability at the first lens of 28 $\pm$ 2%, with a photon number purity > 98%. The photons show an indistinguishability > 91% for each dipole and 88% for a balanced quantum superposition of both. The density matrix of the hyper-encoded photonic state is measured by time-resolved polarization tomography, evidencing a fidelity to the target state of 94 $\pm$ 8% and concurrence of 77 $\pm$ 2%, here limited by frequency overlap in our device. Our approach brings the advantages of quantum dot sources to the field of quantum information processing based on frequency encoding.
title A deterministic and efficient source of frequency-polarization hyper-encoded photonic qubits
topic Quantum Physics
url https://arxiv.org/abs/2410.03454