Quantum Teleportation with Telecom Photons from Remote Quantum Emitters

Fuente: arXiv
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Hauptverfasser: Strobel, Tim, Vyvlecka, Michal, Neureuther, Ilenia, Bauer, Tobias, Schäfer, Marlon, Kazmaier, Stefan, Sharma, Nand Lal, Joos, Raphael, Weber, Jonas H., Nawrath, Cornelius, Nie, Weijie, Bhayani, Ghata, Hopfmann, Caspar, Becher, Christoph, Michler, Peter, Portalupi, Simone Luca
Format: Preprint
Veröffentlicht: 2024
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author Strobel, Tim
Vyvlecka, Michal
Neureuther, Ilenia
Bauer, Tobias
Schäfer, Marlon
Kazmaier, Stefan
Sharma, Nand Lal
Joos, Raphael
Weber, Jonas H.
Nawrath, Cornelius
Nie, Weijie
Bhayani, Ghata
Hopfmann, Caspar
Becher, Christoph
Michler, Peter
Portalupi, Simone Luca
author_facet Strobel, Tim
Vyvlecka, Michal
Neureuther, Ilenia
Bauer, Tobias
Schäfer, Marlon
Kazmaier, Stefan
Sharma, Nand Lal
Joos, Raphael
Weber, Jonas H.
Nawrath, Cornelius
Nie, Weijie
Bhayani, Ghata
Hopfmann, Caspar
Becher, Christoph
Michler, Peter
Portalupi, Simone Luca
contents The quest for a global quantum internet is based on the realization of a scalable network which requires quantum hardware with exceptional performance. Among them are quantum light sources providing deterministic, high brightness, high-fidelity entangled photons and quantum memories with coherence times in the millisecond range and above. To operate the network on a global scale, the quantum light source should emit at telecommunication wavelengths with minimum propagation losses. A cornerstone for the operation of such a quantum network is the demonstration of quantum teleportation. Here we realize full-photonic quantum teleportation employing one of the most promising platforms, i.e. semiconductor quantum dots, which can fulfill all the aforementioned requirements. Two remote quantum dots are used, one as a source of entangled photon pairs and the other as a single-photon source. The frequency mismatch between the triggered sources is erased using two polarization-preserving quantum frequency converters, enabling a Bell state measurement at telecommunication wavelengths. A post-selected teleportation fidelity of up to 0.721(33) is achieved, significantly above the classical limit, demonstrating successful quantum teleportation between light generated by distinct sources. These results mark a major advance for the semiconductor platform as a source of quantum light fulfilling a key requirement for a scalable quantum network. This becomes particularly relevant after the seminal breakthrough of addressing a nuclear spin in semiconductor quantum dots demonstrating long coherence times, thus fulfilling another crucial step towards a scalable quantum network.
format Preprint
id arxiv_https___arxiv_org_abs_2411_12904
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum Teleportation with Telecom Photons from Remote Quantum Emitters
Strobel, Tim
Vyvlecka, Michal
Neureuther, Ilenia
Bauer, Tobias
Schäfer, Marlon
Kazmaier, Stefan
Sharma, Nand Lal
Joos, Raphael
Weber, Jonas H.
Nawrath, Cornelius
Nie, Weijie
Bhayani, Ghata
Hopfmann, Caspar
Becher, Christoph
Michler, Peter
Portalupi, Simone Luca
Quantum Physics
Optics
The quest for a global quantum internet is based on the realization of a scalable network which requires quantum hardware with exceptional performance. Among them are quantum light sources providing deterministic, high brightness, high-fidelity entangled photons and quantum memories with coherence times in the millisecond range and above. To operate the network on a global scale, the quantum light source should emit at telecommunication wavelengths with minimum propagation losses. A cornerstone for the operation of such a quantum network is the demonstration of quantum teleportation. Here we realize full-photonic quantum teleportation employing one of the most promising platforms, i.e. semiconductor quantum dots, which can fulfill all the aforementioned requirements. Two remote quantum dots are used, one as a source of entangled photon pairs and the other as a single-photon source. The frequency mismatch between the triggered sources is erased using two polarization-preserving quantum frequency converters, enabling a Bell state measurement at telecommunication wavelengths. A post-selected teleportation fidelity of up to 0.721(33) is achieved, significantly above the classical limit, demonstrating successful quantum teleportation between light generated by distinct sources. These results mark a major advance for the semiconductor platform as a source of quantum light fulfilling a key requirement for a scalable quantum network. This becomes particularly relevant after the seminal breakthrough of addressing a nuclear spin in semiconductor quantum dots demonstrating long coherence times, thus fulfilling another crucial step towards a scalable quantum network.
title Quantum Teleportation with Telecom Photons from Remote Quantum Emitters
topic Quantum Physics
Optics
url https://arxiv.org/abs/2411.12904