Controlling single-photon transport in waveguides with finite cross-section
arXiv:1303.1981 · doi:10.1103/PhysRevA.88.013836
Abstract
We study the transverse-size effect of a quasi-one-dimensional rectangular waveguide on the single-photon scattering on a two-level system. We calculate the transmission and reflection coefficients for single incident photons using the scattering formalism based on the Lippmann-Schwinger equation. When the transverse size of the waveguide is larger than a critical size, we find that the transverse mode will be involved in the single-photon scattering. Including the coupling to a higher traverse mode, we find that the photon in the lowest channel will be lost into the other channel, corresponding to the other transverse modes, when the input energy is larger than the maximum bound-state energy. Three kinds of resonance phenomena are predicted: single-photon resonance, photonic Feshbach resonance, and cutoff (minimum) frequency resonance. At these resonances, the input photon is completely reflected.
9 pages, 6 figures
References in corpus (11)
- The Quantum Internet
- Superconducting Circuits and Quantum Information
- Coherent quantum state storage and transfer between two phase qubits via a resonant cavity
- Controllable scattering of photons inside a one-dimensional resonator waveguide
- Strongly Correlated Two-Photon Transport in One-Dimensional Waveguide Coupled to A Two-Level System
- Strongly-correlated multi-particle transport in one-dimension through a quantum impurity: an outline of exact and complete solutions
- Controlling Quasibound States in 1D Continuum Through Electromagnetic Induced Transparency Mechanism
- Stimulated Emission from a single excited atom in a waveguide
- Photon blockade induced by atoms with Rydberg coupling
- Quasi-bound states in continuum
- Coupled cavity QED for coherent control of photon transmission (I): Green function approach for hybrid systems with two-level doping
Cited by in corpus (26)
- Microwave photonics with superconducting quantum circuits
- Multi-photon Scattering Theory and Generalized Master Equations
- Single-photon quantum router with multiple output ports
- Controllable single-photon frequency converter via a one-dimensional waveguide
- Single-photon scattering in a giant-molecule waveguide-QED system
- Dynamical theory of single photon transport in a one-dimensional waveguide coupled to identical and non-identical emitters
- Experimental reconstruction of the few-photon nonlinear scattering matrix from a single quantum dot in a nanophotonic waveguide
- Tunable single-photon frequency conversion in a Sagnac interferometer
- Control of single-photon transport in a one-dimensional waveguide by another single photon
- Photon scattering by an atomic ensemble coupled to a one-dimensional nanophotonic waveguide
- Waveguide QED: controllable channel from quantum interference
- Effects of Modal Dispersion on Few Photon - Qubit Scattering in One-Dimensional Waveguides
- Analytic Few Photon Scattering in Waveguide QED
- Optical properties of a waveguide-mediated chain of randomly positioned atoms
- Quantum theory of Rayleigh scattering
- Atomic-scale on-demand photon polarization manipulation with high-efficiency for integrated photonic chips
- Limits to single photon transduction by a single atom: Non-Markov theory
- Concurrence of Two Identical Atoms in a Rectangular Waveguide: Linear Approximation with Single Excitation
- Single-photon scattering on a qubit. Space-time structure of the scattered field
- Limits of single-photon storage in a single -type atom
- Retardation effect and dark state in a waveguide QED setup with rectangle cross section
- Controlling single-photon scattering in a rectangular waveguide by a V-type three-level emitter
- Single-photon scattering on a two-qubit system. Spatio-temporal structure of the scattered field
- Scattering States in One-Dimensional Non-Hermitian Baths
- Feasible Surface Plasmon Routing Based on The Self-assembled InGaAs/GaAs Semiconductor Quantum Dot Located between Two Silver Metallic Waveguides
- Nonreciprocal routing induced by chirality in an atom-dimer waveguide-QED system