Alonso-Redondo E, Schmitt M, Urbach Z, Hui C M, Sainidou R, Rembert P, Matyjaszewski K, Bockstaller M R, Fytas G
Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
Department of Materials Science and Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, USA.
Nat Commun. 2015 Sep 22;6:8309. doi: 10.1038/ncomms9309.
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.
设计和制造具有定制声子带隙的混合材料,对于从声学器件到热光器件等领域的创新材料技术具有至关重要的意义。声子杂化带隙源于局域共振模式和传播模式之间的反交叉,因其对结构无序具有相对鲁棒性以及对“可制造性”的相关益处而备受关注。尽管杂化带隙材料广为人知,但由于其性能变化有限且制造方法昂贵,其经济制造和对带隙频率的有效控制仍然难以实现。在此,我们报告一种新策略,通过利用密集聚合物连接的胶体颗粒中颗粒 - 聚合物界面的“各向异性弹性”来实现杂化带隙材料。理论和布里渊散射分析证实了所得杂化带隙对无序的鲁棒性和可调谐性,并为经济合成具有故意控制的带隙位置和宽度频率的新材料提供了指导。