Position-dependent diffusion of light in disordered waveguides
arXiv:1303.3244 · doi:10.1103/PhysRevLett.112.023904
Abstract
Diffusion has been widely used to describe a random walk of particles or waves, and it requires only one parameter -- the diffusion constant. For waves, however, diffusion is an approximation that disregards the possibility of interference. Anderson localization, which manifests itself through a vanishing diffusion coefficient in an infinite system, originates from constructive interference of waves traveling in loop trajectories -- pairs of time-reversed paths returning to the same point. In an open system of finite size, the return probability through such paths is reduced, particularly near the boundary where waves may escape. Based on this argument, the self-consistent theory of localization and the supersymmetric field theory predict that the diffusion coefficient varies spatially inside the system. A direct experimental observation of this effect is a challenge because it requires monitoring wave transport inside the system. Here, we fabricate two-dimensional photonic random media and probe position-dependent diffusion inside the sample from the third dimension. By varying the geometry of the system or the dissipation which also limits the size of loop trajectories, we are able to control the renormalization of the diffusion coefficient. This work shows the possibility of manipulating diffusion via the interplay of localization and dissipation.
24 pages, 6 figures
References in corpus (9)
- Localization of ultrasound in a three-dimensional elastic network
- Cavity Quantum Electrodynamics with Anderson-localized Modes
- Experimental observation of strong photon localization in disordered photonic crystal waveguides
- Direct determination of the transition to localization of light in three dimensions
- Anderson localization as position-dependent diffusion in disordered waveguides
- Microscopic derivation of self-consistent equations of Anderson localization in a disordered medium of finite size
- Supersymmetric field theory of local light diffusion in semi-infinite media
- Interplay between localization and absorption in disordered waveguides
- Unusual Brownian motion of photons in open absorbing media
Cited by in corpus (34)
- Light in correlated disordered media
- Depth-Targeted Energy Deposition Deep Inside Scattering Media
- Beyond Anderson Localization in 1D: Anomalous Localization of Microwaves in Random Waveguides
- Selective coupling of optical energy into the fundamental diffusion mode of a scattering medium
- Dissipation induced extended-localized transition
- Control of mesoscopic transport by modifying transmission channels in opaque media
- Fluctuations and correlations of transmission eigenchannels in diffusive media
- The dependent scattering effect on radiative properties of micro/nanoscale discrete disordered media
- Effect of Dependent Scattering on Light Absorption in Highly Scattering Random Media
- Occurrence of anomalous diffusion and non-local response in highly-scattering acoustic periodic media
- Statistics and control of waves in disordered media
- Transverse confinement of ultrasound through the Anderson transition in 3D mesoglasses
- Single-Parameter Scaling and Maximum Entropy inside Disordered One-Dimensional Systems: Theory and Experiment
- Probing Long-Range Intensity Correlations inside Disordered Photonic Nanostructures
- Enhancing light transmission through a random medium with inhomogeneous scattering and loss
- Delivering Broadband Light Deep Inside Diffusive Media
- Interplay between particle trapping and heterogeneity in anomalous diffusion
- Generalization of Stokes-Einstein relation to coordinate dependent damping and diffusivity: An apparent conflict
- Invariance principle for wave propagation inside inhomogeneously disordered materials
- On applicability of inhomogeneous diffusion approach to localized transport through disordered waveguides
- Intensity of waves inside a strongly disordered medium
- Creating high-contrast patterns in multiple-scattering media via wavefront shaping
- Control of Light Diffusion in a Disordered Photonic Waveguide
- Coherent Transport and Symmetry Breaking - Laser Dynamics of Constrained Granular Matter
- Anderson attractors in active arrays
- Coherent wave transmission in quasi-one-dimensional systems with Lévy disorder
- Position-dependent radiative transfer as a tool for studying Anderson localization: Delay time, time-reversal and coherent backscattering
- Numerical study of Anderson localization of terahertz waves in disordered waveguides
- Spontaneous collective transport in a heat--bath
- Statistics of coherent waves inside media with Lévy disorder
- Getting beneath the surface of opaque media: universal structure of transmission eigenchannels
- Harnessing coherent-wave control for sensing applications
- Theory of the Anderson transition in three-dimensional chiral symmetry classes: Connection to type-II superconductors
- Dissipation induced ergodic-nonergodic transitions in finite-height mosaic Wannier-Stark lattices