TY - JOUR
T1 - High-fidelity four-photon GHZ states on chip
AU - Pont, Mathias
AU - Corrielli, Giacomo
AU - Fyrillas, Andreas
AU - Agresti, Iris
AU - Carvacho, Gonzalo
AU - Maring, Nicolas
AU - Emeriau, Pierre Emmanuel
AU - Ceccarelli, Francesco
AU - Albiero, Ricardo
AU - Dias Ferreira, Paulo Henrique
AU - Somaschi, Niccolo
AU - Senellart, Jean
AU - Sagnes, Isabelle
AU - Morassi, Martina
AU - Lemaître, Aristide
AU - Senellart, Pascale
AU - Sciarrino, Fabio
AU - Liscidini, Marco
AU - Belabas, Nadia
AU - Osellame, Roberto
N1 - Publisher Copyright:
© The Author(s) 2024.
PY - 2024/12/1
Y1 - 2024/12/1
N2 - Mutually entangled multi-photon states are at the heart of all-optical quantum technologies. While impressive progresses have been reported in the generation of such quantum light states using free space apparatus, high-fidelity high-rate on-chip entanglement generation is crucial for future scalability. In this work, we use a bright quantum-dot based single-photon source to demonstrate the high fidelity generation of 4-photon Greenberg-Horne-Zeilinger (GHZ) states with a low-loss reconfigurable glass photonic circuit. We reconstruct the density matrix of the generated states using full quantum-state tomography reaching an experimental fidelity to the target state of FGHZ4=(86.0±0.4)%, and a purity of PGHZ4=(76.3±0.6)%. The entanglement of the generated states is certified with a semi device-independent approach through the violation of a Bell-like inequality by more than 39 standard deviations. Finally, we carry out a four-partite quantum secret sharing protocol on-chip where a regulator shares with three interlocutors a sifted key with up to 1978 bits, achieving a qubit-error rate of 10.87%. These results establish that the quantum-dot technology combined with glass photonic circuitry offers a viable path for entanglement generation and distribution.
AB - Mutually entangled multi-photon states are at the heart of all-optical quantum technologies. While impressive progresses have been reported in the generation of such quantum light states using free space apparatus, high-fidelity high-rate on-chip entanglement generation is crucial for future scalability. In this work, we use a bright quantum-dot based single-photon source to demonstrate the high fidelity generation of 4-photon Greenberg-Horne-Zeilinger (GHZ) states with a low-loss reconfigurable glass photonic circuit. We reconstruct the density matrix of the generated states using full quantum-state tomography reaching an experimental fidelity to the target state of FGHZ4=(86.0±0.4)%, and a purity of PGHZ4=(76.3±0.6)%. The entanglement of the generated states is certified with a semi device-independent approach through the violation of a Bell-like inequality by more than 39 standard deviations. Finally, we carry out a four-partite quantum secret sharing protocol on-chip where a regulator shares with three interlocutors a sifted key with up to 1978 bits, achieving a qubit-error rate of 10.87%. These results establish that the quantum-dot technology combined with glass photonic circuitry offers a viable path for entanglement generation and distribution.
U2 - 10.1038/s41534-024-00830-z
DO - 10.1038/s41534-024-00830-z
M3 - Article
AN - SCOPUS:85193416449
SN - 2056-6387
VL - 10
JO - npj Quantum Information
JF - npj Quantum Information
IS - 1
M1 - 50
ER -