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Ultra-broadband Entangled Photons on a Nanophotonic Chip

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arxiv 2101.04877 v1 pith:E5XBYEX4 submitted 2021-01-13 physics.optics physics.app-ph

classification physics.opticsphysics.app-ph
keywords nanophotonicchipphotonsquantumbandwidthcommunicationentangledentanglement
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abstract

Nanophotonic entangled-photon sources are a critical building block of chip-scale quantum photonic architecture and have seen significant development over the past two decades. These sources generate photon pairs that typically span over a narrow frequency bandwidth. Generating entanglement over a wide spectral region has proven to be useful in a wide variety of applications including quantum metrology, spectroscopy and sensing, and optical communication. However, generation of broadband photon pairs with temporal coherence approaching an optical cycle on a chip is yet to be seen. Here we demonstrate generation of ultra-broadband entangled photons using spontaneous parametric down-conversion in a periodically-poled lithium niobate nanophotonic waveguide. We employ dispersion engineering to achieve a bandwidth of 100 THz (1.2 - 2 $\mu$m), at a high efficiency of 13 GHz/mW. The photons show strong temporal correlations and purity with the coincidence-to-accidental ratio exceeding $10^5$ and $>$ 98\% two-photon interference visibility. These properties together with the piezo-electric and electro-optic control and reconfigurability, make thin-film lithium niobate an excellent platform for a controllable entanglement source for quantum communication and computing, and open a path towards femtosecond metrology and spectroscopy with non-classical light on a nanophotonic chip.

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  1. Locally-acting mirror Hamiltonians

    quant-ph 2019-08 conditional novelty 6.0 of 10

    The authors construct locally-acting mirror Hamiltonians using position-space field operators that require both positive and negative frequency photons.

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