Abstract

We study theoretically the spontaneous emission rate of a two-level quantum emitter in any nanophotonic system. We derive a general representation of the rate on the orientation of the transition dipole by only invoking symmetry of the Green function. The rate depends quadratically on orientation and is determined by rates along three principal axes, which greatly simplifies visualization: emission rate surfaces provide insight on how preferred orientations for enhancement (or inhibition) depend on emission frequency and location, as shown for a mirror, a plasmonic sphere, and a photonic band-gap crystal. Moreover, insight is provided on means to “switch” the emission rates by actively controlling the orientation of the emitters’ transition dipole.

URL

https://journals.aps.org/pra/abstract/10.1103/PhysRevA.80.053802

Authors

W. L. Vos, A. F. Koenderink, and I. S. Nikolaev

Year of publication

2009

Date published

11/2009

Journal

Phys. Rev. A

Volume

80

Pages

053802: 1-7

DOI number

10.1103/PhysRevA.80.053802

Keywords

Fermi golden rule, nanophotonics, quantum optics, spontaneous emission