Alonso-Redondo Elena, Huesmann Hannah, El Boudouti El-Houssaine, Tremel Wolfgang, Djafari-Rouhani Bahram, Butt Hans-Juergen, Fytas George
‡Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
§Department of Inorganic Chemistry, Johannes Gutenberg University, Duesbergweg 10-14, 55128 Mainz, Germany.
ACS Appl Mater Interfaces. 2015 Jun 17;7(23):12488-95. doi: 10.1021/acsami.5b01247. Epub 2015 Apr 9.
We studied experimentally and theoretically the direction-dependent elastic and electromagnetic wave propagation in a supported film of hybrid PMMA (poly[methyl-methacrylate])-TiO2 superlattice (SL). In the direction normal to the layers, this one-dimensional periodic structure opens propagation band gaps for both hypersonic (GHz) phonons and near-UV photons. The high mismatch of elastic and optical impedance results in a large dual phoxonic band gap. The presence of defects inherent to the spin-coating fabrication technique is sensitively manifested in the band gap region. Utilizing Brillouin light scattering, phonon propagation along the layers was observed to be distinctly different from propagation normal to them and can, under certain conditions (SL thickness and substrate elasticity), reveal the nanomechanical properties of the constituent layers. Besides the first realization of unidirectional phoxonic behavior, hybrid (soft-hard) periodic materials are a promising simple platform for opto-acoustic interactions and applications such as filters and Bragg mirrors.
我们通过实验和理论研究了混合聚甲基丙烯酸甲酯(PMMA)-二氧化钛(TiO₂)超晶格(SL)支撑薄膜中弹性波和电磁波的方向依赖性传播。在垂直于层的方向上,这种一维周期性结构为高超音速(GHz)声子和近紫外光子打开了传播带隙。弹性和光学阻抗的高度不匹配导致了较大的双声子光子带隙。旋涂制造技术固有的缺陷在带隙区域中得到了灵敏的体现。利用布里渊光散射,观察到沿层传播的声子与垂直于层传播的声子明显不同,并且在某些条件下(SL厚度和衬底弹性),可以揭示组成层的纳米力学性质。除了首次实现单向声子行为外,混合(软-硬)周期性材料还是用于光声相互作用以及诸如滤波器和布拉格镜等应用的有前景的简单平台。