Xu Mingxin, Wang Jizhen, Harley William S, Lee Peter V S, Collins David J
Department of Biomedical Engineering, University of Melbourne, Melbourne, Victoria, 3010, Australia.
Graeme Clarke Institute, University of Melbourne, Parkville, Victoria, 3052, Australia.
Adv Sci (Weinh). 2023 Aug;10(23):e2301489. doi: 10.1002/advs.202301489. Epub 2023 Jun 7.
Acoustic holography offers the ability to generate designed acoustic fields to manipulate microscale objects. However, the static nature or large aperture sizes of 3D printed acoustic holographic phase plates limits the ability to rapidly alter generated fields. In this work, a programmable acoustic holography approach is demonstrated by which multiple discrete or continuously variable acoustic targets can be created. Here, the holographic phase plate encodes multiple images, where the desired field is produced by modifying the sound speed of an intervening fluid media. Its flexibility is demonstrated in generating various acoustic patterns, including continuous line segments, discrete letters and numbers, using this method as a sound speed indicator and fluid identification tool. This programmable acoustic holography approach has the advantages of generating reconfigurable and designed acoustic fields, with broad potential in microfluidics, cell/tissue engineering, real-time sensing, and medical ultrasound.
声学全息术能够生成经过设计的声场来操控微观物体。然而,3D打印声学全息相位板的静态特性或大孔径尺寸限制了快速改变所生成声场的能力。在这项工作中,展示了一种可编程声学全息术方法,通过该方法可以创建多个离散或连续可变的声学目标。在此,全息相位板对多个图像进行编码,其中所需的声场是通过改变中间流体介质的声速来产生的。利用该方法作为声速指示器和流体识别工具,在生成各种声学图案(包括连续线段、离散字母和数字)方面展示了其灵活性。这种可编程声学全息术方法具有生成可重构和设计声场的优点,在微流体、细胞/组织工程、实时传感和医学超声等领域具有广泛的潜力。