Invariance property of wave scattering through disordered media
arXiv:1409.7229 · doi:10.1073/pnas.1417725111
Abstract
A fundamental insight in the theory of diffusive random walks is that the mean length of trajectories traversing a finite open system is independent of the details of the diffusion process. Instead, the mean trajectory length depends only on the system's boundary geometry and is thus unaffected by the value of the mean free path. Here we show that this result is rooted on a much deeper level than that of a random walk, which allows us to extend the reach of this universal invariance property beyond the diffusion approximation. Specifically, we demonstrate that an equivalent invariance relation also holds for the scattering of waves in resonant structures as well as in ballistic, chaotic or in Anderson localized systems. Our work unifies a number of specific observations made in quite diverse fields of science ranging from the movement of ants to nuclear scattering theory. Potential experimental realizations using light fields in disordered media are discussed.
10 pages, 4 figures, appendix included; open access journal publication at PNAS
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Cited by in corpus (8)
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- Pathlengths of open channels in multiple scattering media
- Partial Fermionization---Spectral Universality in 1D Repulsive Bose Gases
- Time delay in 1D disordered media with high transmission
- Temporal light control in complex media through the singular value decomposition of the time-gated transmission matrix