arXiv Analytics

Sign in

arXiv:cond-mat/0511284AbstractReferencesReviewsResources

Observation of the critical regime near Anderson localization of light

Martin Störzer, Peter Gross, Christof M. Aegerter, Georg Maret

Published 2005-11-11, updated 2005-11-12Version 2

Diffusive transport is among the most common phenomena in nature [1]. However, as predicted by Anderson [2], diffusion may break down due to interference. This transition from diffusive transport to localization of waves should occur for any type of classical or quantum wave in any media as long as the wavelength becomes comparable to the transport mean free path $\ell^*$ [3]. The signatures of localization and those of absorption, or bound states, can however be similar, such that an unequivocal proof of the existence of wave localization in disordered bulk materials is still lacking. Here we present measurements of time resolved non-classical diffusion of visible light in strongly scattering samples, which cannot be explained by absorption, sample geometry or reduction in transport velocity. Deviations from classical diffusion increase strongly with decreasing $\ell^*$ as expected for a phase transition. This constitutes an experimental realization of the critical regime in the approach to Anderson localization.

Related articles: Most relevant | Search more
arXiv:0801.0027 [cond-mat.dis-nn] (Published 2007-12-29)
Anderson localization of electron states in graphene in different types of disorder
arXiv:cond-mat/0504557 (Published 2005-04-21, updated 2006-10-26)
Analytical realization of finite-size scaling for Anderson localization: Is there transition in the 2D case?
arXiv:1309.2306 [cond-mat.dis-nn] (Published 2013-09-09, updated 2014-08-18)
Adatoms and Anderson localization in graphene