利用手性表面波的鲁棒声拉

Neng Wang, Ruo-Yang Zhang, C. T. Chan
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引用次数: 3

摘要

我们表明,在水中嵌入两个由旋转速度相等但相反的旋转圆柱体组成的声子晶体之间的界面上支持一对单向手性表面波,可以实现远距离和鲁棒的声拉。当具有较小Bloch波矢量的手性表面模式被激发时,位于界面波导中的粒子会将激发的表面模式散射到具有较大Bloch波矢量的另一个手性表面模式,从而产生声拉力,而与粒子的大小和材料无关。由于手性表面波对局部紊乱的反向散射免疫,粒子可以按照界面形状决定的灵活轨迹被拉。因此,这种新的声拉方案克服了传统结构梁声拉的一些局限性,如拉距离短、直线型拉以及对粒子散射特性的依赖性强等。我们的工作也可能启发拓扑声学在声学操作中的应用。
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Robust Acoustic Pulling Using Chiral Surface Waves
We show that long-range and robust acoustic pulling can be achieved by using a pair of one-way chiral surface waves supported on the interface between two phononic crystals composed of spinning cylinders with equal but opposite spinning velocities embedded in water. When the chiral surface mode with a relative small Bloch wave vector is excited, the particle located in the interface waveguide will scatter the excited surface mode to another chiral surface mode with a greater Bloch wave vector, resulting in an acoustic pulling force, irrespective of the size and material of the particle. Thanks to the backscattering immunity of the chiral surface waves against local disorders, the particle can be pulled following a flexible trajectory as determined by the shape of the interface. As such, this new acoustic pulling scheme overcomes some of the limitations of the traditional acoustic pulling using structured beams, such as short pulling distances, straight-line type pulling and strong dependence on the scattering properties of the particle. Our work may also inspire the application of topological acoustics to acoustic manipulations.
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