English

Entanglement sensitivity to signal attenuation and amplification

Quantum Physics 2014-07-04 v2

Abstract

We analyze general laws of continuous-variable entanglement dynamics during the deterministic attenuation and amplification of the physical signal carrying the entanglement. These processes are inevitably accompanied by noises, so we find fundamental limitations on noise intensities that destroy entanglement of gaussian and non-gaussian input states. The phase-insensitive amplification Φ1Φ2ΦN\Phi_1 \otimes \Phi_2 \otimes \ldots \Phi_N with the power gain κi2\kappa_i \ge 2 (3\approx 3 dB, i=1,,Ni=1,\ldots,N) is shown to destroy entanglement of any NN-mode gaussian state even in the case of quantum limited performance. In contrast, we demonstrate non-gaussian states with the energy of a few photons such that their entanglement survives within a wide range of noises beyond quantum limited performance for any degree of attenuation or gain. We detect entanglement preservation properties of the channel Φ1Φ2\Phi_1 \otimes \Phi_2, where each mode is deterministically attenuated or amplified. Gaussian states of high energy are shown to be robust to very asymmetric attenuations, whereas non-gaussian states are at an advantage in the case of symmetric attenuation and general amplification. If Φ1=Φ2\Phi_1 = \Phi_2, the total noise should not exceed 12κ2+1\frac{1}{2} \sqrt{\kappa^2+1} to guarantee entanglement preservation.

Keywords

Cite

@article{arxiv.1405.1754,
  title  = {Entanglement sensitivity to signal attenuation and amplification},
  author = {Sergey N. Filippov and Mario Ziman},
  journal= {arXiv preprint arXiv:1405.1754},
  year   = {2014}
}

Comments

5 pages, 3 figures, corrected, selected by the journal as Editors' Suggestion