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通过相位工程产生声自弯曲和瓶束光束。

Generation of acoustic self-bending and bottle beams by phase engineering.

机构信息

1] National Science Foundation Nanoscale Science and Engineering Center, 3112 Etcheverry Hall, University of California, Berkeley, California 94720, USA [2].

National Science Foundation Nanoscale Science and Engineering Center, 3112 Etcheverry Hall, University of California, Berkeley, California 94720, USA.

出版信息

Nat Commun. 2014 Jul 3;5:4316. doi: 10.1038/ncomms5316.

Abstract

Directing acoustic waves along curved paths is critical for applications such as ultrasound imaging, surgery and acoustic cloaking. Metamaterials can direct waves by spatially varying the material properties through which the wave propagates. However, this approach is not always feasible, particularly for acoustic applications. Here we demonstrate the generation of acoustic bottle beams in homogeneous space without using metamaterials. Instead, the sound energy flows through a three-dimensional curved shell in air leaving a close-to-zero pressure region in the middle, exhibiting the capability of circumventing obstacles. By designing the initial phase, we develop a general recipe for creating self-bending wave packets, which can set acoustic beams propagating along arbitrary prescribed convex trajectories. The measured acoustic pulling force experienced by a rigid ball placed inside such a beam confirms the pressure field of the bottle. The demonstrated acoustic bottle and self-bending beams have potential applications in medical ultrasound imaging, therapeutic ultrasound, as well as acoustic levitations and isolations.

摘要

沿着弯曲路径引导声波对于超声成像、手术和声学隐身等应用至关重要。超材料可以通过空间变化波传播的材料特性来引导波。然而,这种方法并不总是可行的,特别是对于声学应用。在这里,我们展示了在没有使用超材料的情况下在均匀空间中产生声瓶束。相反,声能流过空气中的三维弯曲壳,在中间留下一个接近零压的区域,表现出绕过障碍物的能力。通过设计初始相位,我们开发了一种通用的方法来创建自弯曲的波包,它可以使声束沿着任意给定的凸轨迹传播。放置在这种光束中的刚性球所经历的测量声拉力证实了瓶的压力场。所展示的声瓶和自弯曲光束在医学超声成像、治疗超声以及声悬浮和隔离中有潜在的应用。

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