论文标题

在水中捕获的超声次波长成像的空气超材料

Trapped air metamaterials for ultrasonic sub-wavelength imaging in water

论文作者

Laureti, Stefano, Hutchins, David A., Astolfi, Lorenzo, Watson, Richard L., Thomas, Peter J., Burrascano, Pietro, Nie, Luzhen, Freear, Steven, Askari, Meisam, Clare, Adam T., Ricci, Marco

论文摘要

由常规基本材料构建的声学超材料可以表现出外来现象,例如负屈光指标,非凡的传输吸收和亚波长度成像。这些通常是通过结合几何和共振效应来实现的。孔结构的声学超材料已经显示出对空气中亚波长的声学成像的潜力,在空气中,实现在孔内产生共振所需的声学阻抗所需差异相对简单。但是,由于水与使用的许多聚合物(例如在添加剂制造中)之间的声阻抗的差异要低得多,因此很难在水中使用聚合物进行超材料。因此,金属通常使用。在这里,我们证明可以通过捕获空气层来克服这一点,使它们围绕着每个充满水的通道,从而使水中成像在水中成为可能。这种捕获的空气设计的操作通过有限元建模和水箱中的实验测量,在200-300 kHz超声波频率上确认。也可以定量地显示,被困的空气设计的表现优于其金属对应物。结果表明,在超声波频率下实现水中的声学分代材料,开发添加剂制造的前进方向。

Acoustic metamaterials constructed from conventional base materials can exhibit exotic phenomena such as negative refractive index, extraordinary transmission-absorption and sub-wavelength imaging. These are typically achieved by combining geometrical and resonance effects. Holey-structured acoustic metamaterials have already shown potential for sub-wavelength acoustic imaging in air, where it is relatively simple to achieve the required difference in acoustic impedance needed to create resonances within the holes. However, the use of polymers for metamaterial operation in water is difficult, due to the much lower difference in acoustic impedance between water and the many polymers used, for example, in additive manufacturing. Hence, metals are commonly used. Here we show that this can be overcome by trapping air layers so that they surround each water-filled channel, making sub-wavelength imaging in water possible. The operation of such a Trapped air design is confirmed at 200-300 kHz ultrasonic frequencies via both finite element modelling and experimental measurements in a water tank. It is also shown quantitatively that the trapped air design outperforms its metal counterpart. The results indicate a way forward for exploiting additive-manufacturing for realising acoustic metamaterials in water at ultrasonic frequencies.

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