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Large-scale cluster quantum microcombs

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arxiv 2406.10715 v2 pith:GERW6JUS submitted 2024-06-15 physics.optics quant-ph

classification physics.opticsquant-ph
keywords quantumclusterfrequencylinesmicrocombsopticalstatesabundant
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An optical frequency comb comprises a cluster of equally spaced, phase-locked spectral lines. Replacing these classical components with correlated quantum light gives rise to cluster quantum frequency combs, providing abundant quantum resources for measurement-based quantum computation and multi-user quantum networks. We propose and generate cluster quantum microcombs within an on-chip optical microresonator driven by multi-frequency lasers. Through resonantly enhanced four-wave mixing processes, continuous-variable cluster states with 60 qumodes are deterministically created. The graph structures can be programmed into one- and two-dimensional lattices by adjusting the configurations of the pump lines, which are confirmed inseparable based on the measured covariance matrices. Our work demonstrates the largest-scale cluster states with unprecedented raw squeezing levels from a photonic chip, offering a compact and scalable platform for computational and communicational tasks with quantum advantages.

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  1. Strong nanophotonic quantum squeezing exceeding 3.5 dB in a foundry-compatible Kerr microresonator

    physics.optics 2024-11 conditional novelty 6.0 of 10

    A foundry-fabricated Si3N4 microring produces 3.7 dB of directly detected twin-beam squeezing, consistent with an overcoupling model and implying roughly 10.7 dB on-chip.

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