Programmable Bell State Generation in an Integrated Thin Film Lithium Niobate Circuit

Fuente: arXiv
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Main Authors: Maeder, Andreas, Chapman, Robert J., Sabatti, Alessandra, Finco, Giovanni, Kellner, Jost, Grange, Rachel
Format: Preprint
Published: 2025
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_version_ 1866915721600040960
author Maeder, Andreas
Chapman, Robert J.
Sabatti, Alessandra
Finco, Giovanni
Kellner, Jost
Grange, Rachel
author_facet Maeder, Andreas
Chapman, Robert J.
Sabatti, Alessandra
Finco, Giovanni
Kellner, Jost
Grange, Rachel
contents Entanglement is central to quantum technologies such as cryptography, sensing, and computing. Photon pairs generated via nonlinear optical processes are excellent for preparing entangled states due to their long coherence times and compatibility with fiber optic networks. Steady progress in nanofabrication has positioned lithium niobate-on-insulator (LNOI) as a leading platform for monolithic integration of photon pair sources into optical circuits, leveraging its strong second-order nonlinearity. Here, we present a reconfigurable photonic integrated circuit on LNOI, which combines two on-chip photon pair sources with programmable interferometers, enabling generation of entangled states. The pair sources achieve a source brightness of 26 MHz nm$^{-1}$ mW$^{-1}$ while maintaining a coincidence-to-accidental ratio above 100. We successfully interfere the two sources with $99 \pm 0.7$ % visibility, demonstrating the indistinguishability required for producing entanglement on-chip. We show preparation of any of the maximally entangled Bell states with fidelity above 90 % verified by quantum state tomography. These results establish LNOI as a compelling, scalable platform to explore integrated quantum photonic technologies enabled by high-brightness sources of entangled quantum states.
format Preprint
id arxiv_https___arxiv_org_abs_2506_18079
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Programmable Bell State Generation in an Integrated Thin Film Lithium Niobate Circuit
Maeder, Andreas
Chapman, Robert J.
Sabatti, Alessandra
Finco, Giovanni
Kellner, Jost
Grange, Rachel
Quantum Physics
Optics
Entanglement is central to quantum technologies such as cryptography, sensing, and computing. Photon pairs generated via nonlinear optical processes are excellent for preparing entangled states due to their long coherence times and compatibility with fiber optic networks. Steady progress in nanofabrication has positioned lithium niobate-on-insulator (LNOI) as a leading platform for monolithic integration of photon pair sources into optical circuits, leveraging its strong second-order nonlinearity. Here, we present a reconfigurable photonic integrated circuit on LNOI, which combines two on-chip photon pair sources with programmable interferometers, enabling generation of entangled states. The pair sources achieve a source brightness of 26 MHz nm$^{-1}$ mW$^{-1}$ while maintaining a coincidence-to-accidental ratio above 100. We successfully interfere the two sources with $99 \pm 0.7$ % visibility, demonstrating the indistinguishability required for producing entanglement on-chip. We show preparation of any of the maximally entangled Bell states with fidelity above 90 % verified by quantum state tomography. These results establish LNOI as a compelling, scalable platform to explore integrated quantum photonic technologies enabled by high-brightness sources of entangled quantum states.
title Programmable Bell State Generation in an Integrated Thin Film Lithium Niobate Circuit
topic Quantum Physics
Optics
url https://arxiv.org/abs/2506.18079