2015
DOI: 10.1103/physrevb.91.075414
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Phonon dispersion in hypersonic two-dimensional phononic crystal membranes

Abstract: We investigate experimentally and theoretically the acoustic phonon propagation in two-dimensional phononic crystal membranes. Solid-air and solid-solid phononic crystals were made of square lattices of holes and Au pillars in and on 250 nm thick single crystalline Si membrane, respectively. The hypersonic phonon dispersion was investigated using Brillouin light scattering. Volume reduction (holes) or mass loading (pillars) accompanied with second-order periodicity and local resonances are shown to significant… Show more

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Cited by 84 publications
(86 citation statements)
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References 43 publications
(72 reference statements)
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“…In the past few years, this idea expanded beyond the phononic bandgaps and researchers began dreaming about the suppression of phonons in the terahertz frequency range thus reducing the thermal conductivity of materials [30,32,33,55]. However, the Brillouin light scattering experiments could confirm changes in phonon dispersion only up to a few tens of gigahertz [31,48], which affects only a negligible part of the thermal phonon spectrum at room temperature.…”
Section: Discussionmentioning
confidence: 99%
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“…In the past few years, this idea expanded beyond the phononic bandgaps and researchers began dreaming about the suppression of phonons in the terahertz frequency range thus reducing the thermal conductivity of materials [30,32,33,55]. However, the Brillouin light scattering experiments could confirm changes in phonon dispersion only up to a few tens of gigahertz [31,48], which affects only a negligible part of the thermal phonon spectrum at room temperature.…”
Section: Discussionmentioning
confidence: 99%
“…This mode flattening is often described as hybridization between the membrane modes and the resonant frequencies of the pillars. Analyzing the relative height of the mode location (ξ) [30,31], we find that the states corresponding to the flattened regions are localized inside the pillars (green color) [30,3234]. Such localized states at the resonant frequencies are called local resonances.
10.1080/14686996.2018.1542524-F0001Figure 1.Phonon dispersion of a pillar-based PnC (solid lines), a silicon membrane (dashed lines), and resonant frequencies of a pillar (horizontal dash-dotted lines).
…”
Section: Physics Of Local Resonances and Phononic Bandgapsmentioning
confidence: 99%
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“…26 There are few reports on cavity-type hPnCs with cylindrical nanopores, e.g., with a single crystalline epoxy/air sample, 18 anodic porous alumina containing hexagonal arrays of aligned nanopores oriented normal to the film surface, 27,28 and square arrays of holes of Si-membranes. 29 Using Brillouin light scattering spectroscopy (BLS) in transmission geometry (see Fig. 2(d)), the phonon dispersion relation has been recorded for a square lattice hPnC with filled spherical nanopores 6 and hexagonal lattice with both air-and filled spherical nanopores.…”
mentioning
confidence: 99%
“…30 In the former case, there was no direct comparison with the theoretical band diagram, while in the latter this comparison was restricted on the observed phononic branches. For the semi-or non-transparent hPnCs, 28,29 BLS was employed in backscattering geometry where the ripple mechanism dominated the scattering from the surface. For a fundamental understanding, however, the theoretical representation of the full BLS spectrum, frequencies, and intensities is necessary.…”
mentioning
confidence: 99%