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Cryogenic microwave link for quantum local area networks

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arxiv 2308.12398 v2 pith:A4V4A6CN submitted 2023-08-23 quant-ph cond-mat.supr-conphysics.app-ph

classification quant-phcond-mat.supr-conphysics.app-ph
keywords quantummicrowavesuperconductingdilutiondistributedformareacenter
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abstract

Scalable quantum information processing with superconducting circuits is expected to advance from individual processors located in single dilution refrigerators to more powerful distributed quantum computing systems. The realization of hardware platforms for quantum local area networks (QLANs) compatible with superconducting technology is of high importance in order to achieve a practical quantum advantage. Here, we present a fundamental prototype platform for a microwave QLAN based on a cryogenic link connecting two separate dilution cryostats over a distance of $6.6$ m with a base temperature of $52$ mK in the center. Superconducting microwave coaxial cables are employed to form a quantum communication channel between the distributed network nodes. We demonstrate the continuous-variable entanglement distribution between the remote dilution refrigerators in the form of two-mode squeezed microwave states, reaching squeezing of $2.10 \pm 0.02$ dB and negativity of $0.501 \pm 0.011$. Furthermore, we show that quantum entanglement is preserved at channel center temperatures up to $1$ K, paving the way towards microwave quantum communication at elevated temperatures. Consequently, such a QLAN system can form the backbone for future distributed quantum computing with superconducting circuits.

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Forward citations

Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Nondegenerate Josephson Mixers with Enhanced Bandwidth and Saturation Power for Quantum Signal Amplification and Transduction

    quant-ph 2025-08 conditional novelty 6.0 of 10

    Impedance-matched nondegenerate Josephson mixers achieve 400 MHz amplification and 700 MHz conversion bandwidths with saturation powers above -110 dBm, far beyond previous resonator-based mixers.

  2. Universal Configuration for Optimizing Complexity in Variational Distributed Quantum Circuits

    quant-ph 2025-08 reject novelty 6.0 of 10

    An intermediate number of intracore iterations maximizes the per-gate complexity of variational distributed quantum circuits in all four topologies studied.

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