Hu Zhongtao, Yang Yaoheng, Xu Lu, Jing Yun, Chen Hong
Department of Biomedical Engineering, Washington University in St. Louis, Saint Louis, MO 63130, USA.
Graduate Program in Acoustics, The Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Phys Rev Appl. 2022 Aug;18(2). doi: 10.1103/physrevapplied.18.024070. Epub 2022 Aug 26.
Airy beams are peculiar beams that are non-diffracting, self-accelerating, and self-healing, and they have offered great opportunities for ultrasound beam manipulation. However, one critical barrier that limits the broad applications of Airy beams in ultrasound is the lack of simply built device to generate Airy beams in water. This work presents a family of Airy beam-enabled binary acoustic metasurfaces (AB-BAMs) to generate Airy beams for underwater ultrasound beam manipulation. AB-BAMs are designed and fabricated by 3D printing with two coding bits: a polylactic acid (which is the commonly used 3D printing material) unit acting as a bit "1" and a water unit acting as a bit "0". The distribution of the binary units on the metasurface is determined by the pattern of Airy beam. To showcase the wavefront engineering capability of the AB-BAMs, several examples of AB-BAMs are designed, 3D printed, and coupled with a planar single-element ultrasound transducer for experimental validation. We demonstrate the capability of AB-BAMs in flexibly tuning the focal region size and beam focusing in 3D space by changing the design of the AB-BAMs. The focal depth of AB-BAMs can be continuous and electronical tuned by adjusting the operating frequency of the planar transducer without replacing the AB-BAMs. The superimposing method is leveraged to enable the generation of complex acoustic fields, e.g., multi-foci and letter patterns (e.g., "W" and "U"). The more complex focal patterns are shown to be also continuously steerable by simply adjusting the operating frequency. Furthermore, the proposed 3D-printed AB-BAMs are simple to design, easy to fabricate, and low-cost to produce with the capabilities to achieve tunable focal size, flexible 3D beam focusing, arbitrary multipoint focusing, and continuous steerability, which creates unprecedented potential for ultrasound beam manipulation.
艾里光束是一种特殊的光束,具有无衍射、自加速和自愈的特性,为超声光束操纵提供了巨大的机遇。然而,限制艾里光束在超声领域广泛应用的一个关键障碍是缺乏在水中简单构建的产生艾里光束的装置。这项工作提出了一族基于艾里光束的二元声学超表面(AB-BAMs),用于产生水下超声光束操纵的艾里光束。AB-BAMs通过3D打印设计和制造,具有两个编码位:聚乳酸(常用的3D打印材料)单元作为位“1”,水单元作为位“0”。超表面上二元单元的分布由艾里光束的图案决定。为了展示AB-BAMs的波前工程能力,设计了几个AB-BAMs示例,进行3D打印,并与平面单元素超声换能器耦合进行实验验证。我们通过改变AB-BAMs的设计,展示了AB-BAMs在灵活调整焦区尺寸和在三维空间中进行光束聚焦的能力。通过调整平面换能器的工作频率,无需更换AB-BAMs,AB-BAMs的焦深可以连续且电子调谐。利用叠加方法能够产生复杂的声场,例如多焦点和字母图案(如“W”和“U”)。通过简单调整工作频率,更复杂的焦斑图案也能连续可控。此外,所提出的3D打印AB-BAMs设计简单、易于制造且成本低廉,具有实现可调焦尺寸、灵活的三维光束聚焦、任意多点聚焦和连续可控性的能力,为超声光束操纵创造了前所未有的潜力。