Optical Thouless conductance and level-spacing statistics in two-dimensional Anderson localizing systems
arXiv:1910.14451 · doi:10.1103/PhysRevB.100.060201
Abstract
We experimentally investigate spectral statistics in Anderson localization in two-dimensional amorphous disordered media. Intensity distributions captured over an ultrabroad wavelength range of ~nm and averaged over numerous configurations provided the Ioffe-Regel parameter to be over the investigated wavelength range. The spectra of the disordered structures provided access to several quasimodes, whose widths and separations allowed to directly estimate the optical Thouless conductance , consistently observed to be below unity. The probability distribution of was measured to be a log-normal. Despite being in the Anderson localization regime, the spacings of energy levels of the system was seen to follow a near Wigner-Dyson function. Theoretical calculations based on the tight-binding model, modified to include coupling to a bath, yielded results that were in excellent agreement with experiments. From the model, the level-spacing behavior was attributed to the degree of localization obtained in the optical disordered system.
6 pages, 7 figures in main manuscript, and 3 pages, 5 figures in Supplementary Document
References in corpus (9)
- Direct observation of Anderson localization of matter-waves in a controlled disorder
- Localization of ultrasound in a three-dimensional elastic network
- Light fields in complex media: mesoscopic scattering meets wave control
- Designer disordered materials with large complete photonic band gaps
- Cavity Quantum Electrodynamics with Anderson-localized Modes
- Quantum Correlations in Two-Particle Anderson Localization
- Extended quasimodes within nominally localized random waveguides
- Nonuniversal intensity correlations in 2D Anderson localizing random medium
- Level spacing statistics for light in two-dimensional disordered photonic crystals