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Implementation of dispersion-free slow acoustic wave propagation and phase engineering with helical-structured metamaterials

机译:螺旋结构超材料实现无色散慢声波传播和相位工程

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摘要

The ability to slow down wave propagation in materials has attracted significant research interest. A successful solution will give rise to manageable enhanced wave–matter interaction, freewheeling phase engineering and spatial compression of wave signals. The existing methods are typically associated with constructing dispersive materials or structures with local resonators, thus resulting in unavoidable distortion of waveforms. Here we show that, with helical-structured acoustic metamaterials, it is now possible to implement dispersion-free sound deceleration. The helical-structured metamaterials present a non-dispersive high effective refractive index that is tunable through adjusting the helicity of structures, while the wavefront revolution plays a dominant role in reducing the group velocity. Finally, we numerically and experimentally demonstrate that the helical-structured metamaterials with designed inhomogeneous unit cells can turn a normally incident plane wave into a self-accelerating beam on the prescribed parabolic trajectory. The helical-structured metamaterials will have profound impact to applications in explorations of slow wave physics.
机译:减慢材料中波传播的能力已经引起了广泛的研究兴趣。一个成功的解决方案将带来可控的增强的波物质相互作用,续流相位工程和波信号的空间压缩。现有方法通常与构造具有局部谐振器的色散材料或结构相关联,因此导致不可避免的波形失真。在这里,我们表明,利用螺旋结构的声学超材料,现在可以实现无色散的声音减速。螺旋结构的超材料呈现出非色散的高有效折射率,可以通过调节结构的螺旋度来调节其折射率,而波前旋转在降低群速度方面起着主导作用。最后,我们通过数值和实验证明,具有非均匀晶胞设计的螺旋结构超材料可以将垂直入射的平面波转换为规定抛物线轨迹上的自加速束。螺旋结构的超材料将对慢波物理学探索中的应用产生深远的影响。

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