English

Stopping waveguide photons with controllable atomic cavity

Quantum Physics 2016-03-17 v1

Abstract

Slowing/stopping the light travelling in free space with electromagnetically induced transparency to im- plement the optical quantum information processings and store information has been paid much attention in recent years. For the waveguide photons, here, we propose an approach to stop them with a controllable atomic cavity generated by a pair of atomic mirrors; one of them reflects the photon completely and an- other one with the adjustable reflected/transmitted probability of the photons. Based on the full quantum mechanical theory in real space, we show that the reflected/transmitted probability of the waveguide photon with a fixed frequency can be controlled by adjusting the energy-splitting of the driven two-level atomic scatters (i.e., atomic mirrors). As a consequence, the photon can be controllably transmitted/reflected along the waveguide by the aside atomic mirrors with the adjustable atomic energy levels. Ideally, the photons could be stopped in the atomic cavity. This provides a novel mechanism to stop/retravel the waveguide photon in a controllable ways. The feasibility of the proposal with the current integrated optical devices is also discussed.

Keywords

Cite

@article{arxiv.1603.04957,
  title  = {Stopping waveguide photons with controllable atomic cavity},
  author = {Xingmin Li and L. F. Wei},
  journal= {arXiv preprint arXiv:1603.04957},
  year   = {2016}
}
R2 v1 2026-06-22T13:11:59.138Z