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Self-collimation and slow-sound effect of spoof surface acoustic waves

机译:欺骗表面声波的自我准直和慢速影响

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摘要

Self-collimated propagation and slow-sound effect of spoof acoustic surface waves over a thin solid slab with partially embedded spherical cavities in a square lattice are numerically and experimentally demonstrated. Band structure calculations via the Finite-Element Method reveal that a single spoof surface wave band appears below the air-line, which flattens as the spheres are embedded deeper, leveraging the observation of self-collimated slow spoof modes. For a radius-to-lattice constant ratio of 0.45 and embedding depth of 60% of the radius, the surface band is such that non-diffractive guiding of spoof waves along the [11] direction can be achieved. Persistent self-collimated propagation of spoof surface waves over long distances is demonstrated through frequency-domain Finite-Element Method simulations. Plane waves incident from air can couple to the self-collimated modes for a wide range of azimuthal angle of incidence up to 60 degrees, where the polar angle of incidence can be in the range of +/- 15 degrees. Self-collimation of spoof waves is experimentally realized by employing a plane-wave source incident from air. In addition, when the embedding depth is higher than 85%, self-collimated slow spoof modes with group indices higher than 15 can be obtained. The observed phenomena can be utilized in two-dimensional acoustic systems such as logic circuits and interferometric sensing devices. Published under license by AIP Publishing.
机译:在数字晶格中具有部分嵌入的球形空间在薄固体板上的自加管传播和慢速声音效果在方形晶格中的部分嵌入式球形腔在数值上进行了数值和实验证明。通过有限元方法的频带结构计算显示,单个欺骗表面波段出现在空中线下方,随着球体嵌入更深的球体,利用了自加管缓慢欺骗模式的观察。对于半径到晶格恒定比为0.45并嵌入深度的半径的60%,表面带使得可以实现沿着[11]方向的非衍射引导。通过频域有限元方法模拟来证明通过频域有限元方法模拟来证明持久自准直的避免表面波的传播。从空气中发生的平面波可以耦合到自准直的模式,用于广泛的方位角入射角可达60度,其中极性入射角可以在+/- 15度的范围内。通过采用从空气中发生的平面波源来实验地实现了欺骗波的自准直。另外,当嵌入深度高于85%时,可以获得具有高于15的组索引的自加管慢欺骗模式。观察到的现象可以用于二维声学系统,例如逻辑电路和干涉感测装置。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Journal of Applied Physics 》 |2019年第7期| 074901.1-074901.8| 共8页
  • 作者单位

    Burdur Mehmet Akif Ersoy Univ Fac Arts & Sci Dept Nanosci & Nanotechnol TR-15030 Burdur Turkey;

    Inonu Univ Dept Comp Educ & Educ Technol Fac Educ TR-44280 Malatya Turkey;

    Burdur Mehmet Akif Ersoy Univ Fac Arts & Sci Dept Nanosci & Nanotechnol TR-15030 Burdur Turkey;

    Akdeniz Univ Dept Phys Fac Sci TR-07058 Antalya Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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