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Time-Continuous Bell Measurements

  • Sebastian Hofer (Corresponding author)
  • , Denis V. Vasilyev
  • , Markus Aspelmeyer
  • , Klemens Hammerer

Publications: Contribution to journalArticlePeer Reviewed

Abstract

We combine the concept of Bell measurements, in which two systems are projected into a maximally entangled state, with the concept of continuous measurements, which concerns the evolution of a continuously monitored quantum system. For such time-continuous Bell measurements we derive the corresponding stochastic Schrödinger equations, as well as the unconditional feedback master equations. Our results apply to a wide range of physical systems, and are easily adapted to describe an arbitrary number of systems and measurements. Time-continuous Bell measurements therefore provide a versatile tool for the control of complex quantum systems and networks. As examples we show that (i) two two-level systems can be deterministically entangled via homodyne detection, tolerating photon loss up to 50%, and (ii) a quantum state of light can be continuously teleported to a mechanical oscillator, which works under the same conditions as are required for optomechanical ground-state cooling.
Original languageEnglish
Article number170404
Number of pages6
JournalPhysical Review Letters
Volume111
Issue number17
DOIs
Publication statusPublished - 22 Oct 2013

Funding

We acknowledge helpful discussions with G. Giedke and J. I. Cirac. We thank support provided by the European Commission (MALICIA, Q-ESSENCE, ITN cQOM), the European Research Council (ERC QOM), the Austrian Science Fund (FWF) (START, SFB FOQUS), and the Centre for Quantum Engineering and Space-Time Research (QUEST) for support. S. G. H. is supported by the FWF Doctoral Programme CoQuS (W1210).

Austrian Fields of Science 2012

  • 103036 Theoretical physics
  • 103025 Quantum mechanics

Keywords

  • DETERMINISTIC QUANTUM TELEPORTATION
  • STOCHASTIC DIFFERENTIAL-EQUATIONS
  • FEEDBACK-CONTROL
  • STATE TRANSFER
  • GROUND-STATE
  • LIGHT
  • CAVITY
  • SYSTEMS
  • ATOMS
  • ENTANGLEMENT

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