Static and dynamic transport of light close to the Anderson localization transition

被引:14
|
作者
Rivas, JG [1 ]
Sprik, R
Lagendijk, A
Noordam, LD
Rella, CW
机构
[1] Univ Amsterdam, Van der Waals Zeeman Inst, NL-1018 XE Amsterdam, Netherlands
[2] FOM, Inst Atom & Mol Phys, AMOLF, NL-1098 SJ Amsterdam, Netherlands
来源
PHYSICAL REVIEW E | 2001年 / 63卷 / 04期
关键词
D O I
10.1103/PhysRevE.63.046613
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Anderson localization of light refers to an inhibition of wave transport in scattering media due to the interference of multiple scattered waves. We present wavelength dependent midinfrared optical transport measurements in slabs of randomly packed germanium (Ce) micron-sized particles, using a free electron laser as a tunable source of pulsed radiation. Because of their high refractive index and low absorption, Ge and similar semiconductors are excellent systems td study Anderson localization of light. To characterize the samples fully, we have employed several complementary optical techniques: total diffuse transmission, total diffuse reflection, coherent transmission, and time-resolved speckle interferometry. In this way we obtained the scattering (l(s)) and transport (l) mean free paths, the absorption coefficient (alpha), the diffusion constant (D), and the energy transport velocity (v(e)). These- measurements have been made as a function of midinfrared wavelength, so that the scattering cross section:and absorption coefficients can be Vaned in the same samples. We found that the Ge samples are close (kl(s)approximate to3) to the localization transition, but still above it. Our measurements of l(s) and l suggest that l is renormalized due to interference at the proximity of the localization transition. We also found that the diffusion constant is significantly reduced in samples thinner than approximate to 7l.
引用
收藏
页码:466131 / 466131
页数:12
相关论文
共 50 条
  • [1] Midinfrared scattering and absorption in Ge powder close to the Anderson localization transition
    Rivas, JG
    Sprik, R
    Lagendijk, A
    Noordam, LD
    Rella, CW
    PHYSICAL REVIEW E, 2000, 62 (04): : R4540 - R4543
  • [2] Search for Anderson localization of light by cold atoms in a static electric field
    Skipetrov, S. E.
    Sokolov, I. M.
    PHYSICAL REVIEW B, 2019, 99 (13)
  • [3] Numerical study of light correlations in a random medium close to the Anderson localization threshold
    Chang, SH
    Taflove, A
    Yamilov, A
    Burin, A
    Cao, H
    OPTICS LETTERS, 2004, 29 (09) : 917 - 919
  • [4] Anderson localization of light
    Segev, Mordechai
    Silberberg, Yaron
    Christodoulides, Demetrios N.
    NATURE PHOTONICS, 2013, 7 (03) : 197 - 204
  • [5] Anderson localization of light
    Segev M.
    Silberberg Y.
    Christodoulides D.N.
    Nature Photonics, 2013, 7 (3) : 197 - 204
  • [6] Quantum light transport in phase-separated Anderson localization fiber
    Alexander Demuth
    Robin Camphausen
    Álvaro Cuevas
    Nick F. Borrelli
    Thomas P. Seward
    Lisa Lamberson
    Karl W. Koch
    Alessandro Ruggeri
    Francesca Madonini
    Federica Villa
    Valerio Pruneri
    Communications Physics, 5
  • [7] Quantum light transport in phase-separated Anderson localization fiber
    Demuth, Alexander
    Camphausen, Robin
    Cuevas, Alvaro
    Borrelli, Nick F.
    Seward, Thomas P.
    Lamberson, Lisa
    Koch, Karl W.
    Ruggeri, Alessandro
    Madonini, Francesca
    Villa, Federica
    Pruneri, Valerio
    COMMUNICATIONS PHYSICS, 2022, 5 (01)
  • [8] Absence of transport in Anderson localization
    Nakano, F
    REVIEWS IN MATHEMATICAL PHYSICS, 2002, 14 (04) : 375 - 407
  • [9] Anderson localization of slow light
    Z. Valy Vardeny
    Ajay Nahata
    Nature Photonics, 2008, 2 : 75 - 76
  • [10] Red light for Anderson localization
    Skipetrov, S. E.
    Page, J. H.
    NEW JOURNAL OF PHYSICS, 2016, 18