A new class of tunable hypersonic phononic crystals based on polymer-tethered colloids

The design and engineering of hybrid materials exhibiting tailored phononic band gaps are fundamentally relevant to innovative material technologies in areas ranging from acoustics to thermo-optic devices. Phononic hybridization gaps, originating from the anti-crossing between local resonant and pro...

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Published inNature communications Vol. 6; no. 1; p. 8309
Main Authors Alonso-Redondo, E, Schmitt, M, Urbach, Z, Hui, C M, Sainidou, R, Rembert, P, Matyjaszewski, K, Bockstaller, M R, Fytas, G
Format Journal Article
LanguageEnglish
Published England Nature Publishing Group 22.09.2015
Nature Pub. Group
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Summary:The design and engineering of hybrid materials exhibiting tailored phononic band gaps are fundamentally relevant to innovative material technologies in areas ranging from acoustics to thermo-optic devices. Phononic hybridization gaps, originating from the anti-crossing between local resonant and propagating modes, have attracted particular interest because of their relative robustness to structural disorder and the associated benefit to 'manufacturability'. Although hybridization gap materials are well known, their economic fabrication and efficient control of the gap frequency have remained elusive because of the limited property variability and expensive fabrication methodologies. Here we report a new strategy to realize hybridization gap materials by harnessing the 'anisotropic elasticity' across the particle-polymer interface in densely polymer-tethered colloidal particles. Theoretical and Brillouin scattering analysis confirm both the robustness to disorder and the tunability of the resulting hybridization gap and provide guidelines for the economic synthesis of new materials with deliberately controlled gap position and width frequencies.
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PMCID: PMC4595630
USDOE Office of Energy Efficiency and Renewable Energy (EERE)
National Science Foundation (NSF)
EE0006702; DMR-1410845; DMR-1501324
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms9309