English

Transmission of coherent information at the onset of interactions

Quantum Physics 2022-05-06 v2

Abstract

In this work, we investigate the parameters governing the rate at which a quantum channel arises at the onset of an interaction between two systems, AA and BB. In particular, when system AA is pre-entangled with an ancilla, A~\tilde{A}, we quantify the early-time transmission of pre-existing entanglement by calculating the leading order change in coherent information of the complementary channel (ABA\rightarrow B'). We show that, when AA and BB are initially unentangled and BB is pure, there is no change in coherent information to first order, while the leading (second) order change is divergent. However, this divergence may be regulated by embedding the conventional notion of coherent information into what we call the family of nn-coherent informations, defined using nn-R\'enyi entropies. We find that the rate of change of the nn-coherent information at the onset of the interaction is governed by a quantity, which we call the nn-exposure, which captures the extent to which the initial coherent information of AA with A~\tilde{A} is exposed to or `seen by' the interaction Hamiltonian between AA and BB. We give examples in qubit systems and in the light-matter interaction.

Keywords

Cite

@article{arxiv.2110.06499,
  title  = {Transmission of coherent information at the onset of interactions},
  author = {Emily Kendall and Barbara Šoda and Achim Kempf},
  journal= {arXiv preprint arXiv:2110.06499},
  year   = {2022}
}

Comments

Accepted for publication in Journal of Physics A: Mathematical and Theoretical