English

Super-universality of eigenchannel structures and possible optical applications

Mesoscale and Nanoscale Physics 2019-03-27 v2 Optics

Abstract

The propagation of waves through transmission eigenchannels in complex media is emerging as a new frontier of condensed matter and wave physics. A crucial step towards constructing a complete theory of eigenchannels is to demonstrate their spatial structure in any dimension and their wave-coherence nature. Here, we show a surprising result in this direction. Specifically, we find that as the width of diffusive samples increases transforming from quasi one-dimensional (11D) to two-dimensional (22D) geometry, notwithstanding the dramatic changes in the transverse (with respect to the direction of propagation) intensity distribution of waves propagating in such channels, the dependence of intensity on the longitudinal coordinate does not change and is given by the same analytical expression as that for quasi-11D. Furthermore, with a minimal modification, the expression describes also the spatial structures of localized resonances in strictly 11D random systems. It is thus suggested that the underlying physics of eigenchannels might include super-universal key ingredients: they are not only universal with respect to the disorder ensemble and the dimension, but also of 11D nature and closely related to the resonances. Our findings open up a way to tailor the spatial energy density distribution in opaque materials.

Keywords

Cite

@article{arxiv.1812.10001,
  title  = {Super-universality of eigenchannel structures and possible optical applications},
  author = {Ping Fang and Chushun Tian and Liyi Zhao and Yury P. Bliokh and Valentin Freilikher and Franco Nori},
  journal= {arXiv preprint arXiv:1812.10001},
  year   = {2019}
}

Comments

9pages, 9figures

R2 v1 2026-06-23T06:55:33.402Z