Anisotropic Phonon Propagation in Nanoporous Alumina

ORAL

Abstract

Self-ordered nanoporous alumina membranes contain highly ordered hexagonal arrays of cylindrical holes. Phononic crystals based on nanoporous alumina with various porosities represent a composite medium for rich elastic wave propagation phenomena due to their periodicity and acoustic impedance contrast between alumina and infiltrated materials. It allows the manipulation of the high frequency acoustics as probed by Brillouin light scattering. In-plane and out-of-plane (perpendicular to the holes) propagation of the elastic waves are distinctly different. While the former reveals an effective medium and localization behavior, the latter selects the medium filling the holes. Band structure theoretical calculations provide a semiquantitative description of the new experimental findings.

Authors

  • Akihiro Sato

    Max Planck Institute for Polymer Research

  • George Fytas

    FORTH, University of Crete, Greece, F.O.R.T.H Institute of Electronic Structure and Laser Technology

  • Bahram Djafari-Rouhani

    Institut d'Electronique, de Micro-\'electronique et de Nanotechnologie

  • Yan Pennec

    Institut d'Electronique, de Micro-\'electronique et de Nanotechnologie

  • Martin Steinhart

    Max Planck Institute of Microstructure Physics

  • Wolfgang Knoll

    MPIP Mainz, Germany, Max Planck Institute for Polymer Research