Abstract

Unavoidable variations in size and position of the building blocks of photonic crystals cause light scattering and extinction of coherent beams. We present a model for both two- and three-dimensional photonic crystals that relates the extinction length to the magnitude of the variations. The predicted lengths agree well with our experiments on high-quality opals and inverse opals, and with literature data analyzed by us. As a result, control over photons is limited to distances up to 50 lattice parameters (∼15μm) in state-of-the-art structures, thereby impeding applications that require large photonic crystals, such as proposed optical integrated circuits. Conversely, scattering in photonic crystals may lead to different physics such as Anderson localization and nonclassical diffusion.

URL

https://journals.aps.org/prb/abstract/10.1103/PhysRevB.72.153102

Authors

A. F. Koenderink, A. Lagendijk, and W. L. Vos

Year of publication

2005

Date published

10/2005

Journal

Phys. Rev. B

Volume

72

Pages

153102: 1-4

DOI number

10.1103/PhysRevB.72.153102

Keywords

3D photonic band gap, 3D photonic crystals, nanostructure, optical extinction, structural variations