Quantum state engineering of light with continuous-wave optical parametric oscillators

  • Olivier Morin
  • , Jianli Liu
  • , Kun Huang
  • , Felippe Barbosa
  • , Claude Fabre
  • , Julien Laurat

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

Engineering non-classical states of the electromagnetic field is a central quest for quantum optics1,2. Beyond their fundamental significance, such states are indeed the resources for implementing various protocols, ranging from enhanced metrology to quantum communication and computing. A variety of devices can be used to generate non-classical states, such as single emitters, light-matter interfaces or non-linear systems3. We focus here on the use of a continuous-wave optical parametric oscillator3,4. This system is based on a non-linear χ2 crystal inserted inside an optical cavity and it is now well-known as a very efficient source of non-classical light, such as single-mode or two-mode squeezed vacuum depending on the crystal phase matching. Squeezed vacuum is a Gaussian state as its quadrature distributions follow a Gaussian statistics. However, it has been shown that number of protocols require non-Gaussian states5. Generating directly such states is a difficult task and would require strong χ3 non-linearities. Another procedure, probabilistic but heralded, consists in using a measurement-induced non-linearity via a conditional preparation technique operated on Gaussian states. Here, we detail this generation protocol for two non-Gaussian states, the single-photon state and a superposition of coherent states, using two differently phase-matched parametric oscillators as primary resources. This technique enables achievement of a high fidelity with the targeted state and generation of the state in a well-controlled spatiotemporal mode.

Original languageEnglish
Article numbere51224
JournalJournal of Visualized Experiments
Issue number87
DOIs
StatePublished - 30 May 2014

Keywords

  • Coherent state superposition
  • Homodyne detection
  • Issue 87
  • Optical parametric oscillator
  • Optics
  • Physics
  • Quantum optics
  • Quantum state engineering
  • Single photon
  • Squeezed vacuum

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