Thermally generated long-lived quantum correlations for two atoms trapped in fiber-coupled cavities

Physics – Quantum Physics

Scientific paper

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

v2: 6 pages, 6 figures (based on the reviewed version)

Scientific paper

10.1103/PhysRevA.85.032315

A theoretical model for driving a two qubit system to a stable long-lived entanglement is discussed. The entire system is represented by two atoms, initially in ground states and disentangled, each one coupled to a separate cavity with the cavities connected by a fiber. The cavities and fiber exchange energy with their individual thermal environments. Under these conditions, we apply the theory of microscopic master equation developed for the dynamics of the open quantum system. Deriving the density operator of the two-qubit system we found that stable long-lived quantum correlations are generated in the presence of thermal excitation of the environments. To the best of our knowledge, there is no a similar effect observed in a quantum open system described by a generalized microscopic master equation in the approximation of the cavity quantum electrodynamics (CQED).

No associations

LandOfFree

Say what you really think

Search LandOfFree.com for scientists and scientific papers. Rate them and share your experience with other people.

Rating

Thermally generated long-lived quantum correlations for two atoms trapped in fiber-coupled cavities does not yet have a rating. At this time, there are no reviews or comments for this scientific paper.

If you have personal experience with Thermally generated long-lived quantum correlations for two atoms trapped in fiber-coupled cavities, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Thermally generated long-lived quantum correlations for two atoms trapped in fiber-coupled cavities will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFWR-SCP-O-553496

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.