Quantum acousto-optic control of light-matter interactions in nanophotonic networks
arXiv:1901.02899 · doi:10.1103/PhysRevA.99.053852
Abstract
We analyze the coupling of atoms or atom-like emitters to nanophotonic waveguides in the presence of propagating acoustic waves. Specifically, we show that strong index modulations induced by such waves can drastically modify the effective photonic density of states and thereby influence the strength, the directionality, as well as the overall characteristics of photon emission and absorption processes. These effects enable a complete dynamical control of light-matter interactions in waveguide structures, which even in a two dimensional system can be used to efficiently exchange individual photons along selected directions and with a very high fidelity. Such a quantum acousto-optical control provides a versatile tool for various quantum networking applications ranging from the distribution of entanglement via directional emitter-emitter interactions to the routing of individual photonic quantum states via acoustic conveyor belts.
15 pages, 9 figures
References in corpus (10)
- The Quantum Internet
- Chiral Quantum Optics
- Single-Photon Switching and Entanglement of Solid-State Qubits in an Integrated Nanophotonic System
- Chiral nanophotonic waveguide interface based on spin-orbit coupling of light
- Controllable scattering of photons inside a one-dimensional resonator waveguide
- Quantum Optics of Chiral Spin Networks
- Dynamic modulation of photonic crystal nanocavities using gigahertz acoustic phonons
- Cavity QED on a nanofiber using a composite photonic crystal cavity
- Directional and dynamic modulation of the optical emission of an individual GaAs nanowire using surface acoustic waves
- Independent dynamic acousto-mechanical and electrostatic control of individual quantum dots in a LiNbO-GaAs hybrid