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Confining the state of light to a quantum manifold by engineered two-photon loss

  • Z. Leghtas
  • , S. Touzard
  • , I. M. Pop
  • , A. Kou
  • , B. Vlastakis
  • , A. Petrenko
  • , K. M. Sliwa
  • , A. Narla
  • , S. Shankar
  • , M. J. Hatridge
  • , M. Reagor
  • , L. Frunzio
  • , R. J. Schoelkopf
  • , M. Mirrahimi
  • , M. H. Devoret
  • Yale University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Physical systems usually exhibit quantum behavior, such as superpositions and entanglement, only when they are sufficiently decoupled from a lossy environment. Paradoxically, a specially engineered interaction with the environment can become a resource for the generation and protection of quantum states.This notion can be generalized to the confinement of a system into a manifold of quantum states, consisting of all coherent superpositions of multiple stable steady states.We have confined the state of a superconducting resonator to the quantum manifold spanned by two coherent states of opposite phases and have observed a Schrödinger cat state spontaneously squeeze out of vacuum before decaying into a classical mixture.This experiment points toward robustly encoding quantum information inmultidimensional steady-state manifolds.

langue originaleAnglais
Pages (de - à)853-857
Nombre de pages5
journalScience
Volume347
Numéro de publication6224
Les DOIs
étatPublié - 20 févr. 2015

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