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Multiple scattering of classical waves: microscopy, mesoscopy, and diffusion

1998/04/14 by M. C. W. van Rossum, Mark C. W. van Rossum, Theo M. Nieuwenhuizen +1 · 5 citations
Earth and Planetary Sciences · Engineering · Physics and Astronomy · #Classical mechanics #Computational physics #Diffusion #Heavy traffic approximation #Mesoscopic physics #Opacity #Optics #Physics #Quantum mechanics #Radiative transfer #Random lasers and scattering media #Scattering #Scattering theory #Seismic Waves and Analysis #Terahertz technology and applications #Wave propagation #cond-mat.mes-hall

paper · pdf · doi:10.1103/revmodphys.71.313

Review. 86 pages Latex, 32 eps-figures included. To appear in Rev. Mod. Phys

arxiv created 1998/04/14 · openalex publication_date 1999/01/01 · arxiv updated 2009/11/30 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

A tutorial discussion of the propagation of waves in random media is presented. To a first approximation the transport of the multiple scattered waves is given by diffusion theory, but important corrections are presented. These corrections are calculated with the radiative transfer or Schwarzschild-Milne equation, which describes intensity transport at the ``mesoscopic'' level and is derived from the ``microscopic'' wave equation. A precise treatment of the diffuse intensity is derived which automatically includes the effects of boundary layers. Effects such as the enhanced backscatter cone and imaging of objects in opaque media are also discussed within this framework. This approach is extended to mesoscopic correlations between multiple scattered intensities that arise when scattering is strong. These correlations arise from the underlying wave character. The derivation of correlation functions and intensity distribution functions is given and experimental data are discussed. Although the focus is on light scattering, the theory is also applicable to microwaves, sound waves, and noninteracting electrons.

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