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Distributing Stationary Qubit Entanglement through a Nonlocal Squeezed Reservoir

  • A. Andrés-Juanes
  • , J. Agustí
  • , R. Sett
  • , E. S. Redchenko
  • , L. N. Kapoor
  • , S. Hawaldar
  • , P. Rabl
  • , J. M. Fink
  • Institute of Science and Technology Austria (ISTA)
  • Technical University of Munich
  • Walther-Meissner-Institut
  • Munich Center for Quantum Science and Technology (MCQST)
  • IFF-CSIC

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

The distribution of entanglement across distant qubits is a central challenge for the operation of scalable quantum computers and large-scale quantum networks. Existing approaches rely on deterministic state transfer, or probabilistic protocols that require active control or measurements and postselection. Here, we demonstrate a fundamentally different, fully autonomous process, where two remote qubits are entangled through their coupling to a quantum-correlated photonic reservoir. In our experiment, a Josephson parametric converter produces a Gaussian, continuous-variable entangled state of propagating microwave fields that drives two spatially separated superconducting transmon qubits into a stationary, discrete-variable entangled state. We also show how qubit tomography unlocks a direct and sensitive verification of two-mode squeezing in the microwave domain. These results establish networks of qubits interfaced with distributed continuous-variable entangled states as a powerful platform for foundational studies and quantum-technology applications.

Original languageEnglish
Article number031005
JournalPhysical Review X
Volume16
Issue number3
DOIs
StatePublished - 1 Jul 2026

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