Bian Yusheng, Guo Feng, Yang Shujie, Mao Zhangming, Bachman Hunter, Tang Shi-Yang, Ren Liqiang, Zhang Bin, Gong Jianying, Guo Xiasheng, Huang Tony Jun
Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA 16802, USA.
Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708, USA.
Microfluid Nanofluidics. 2017 Aug;21. doi: 10.1007/s10404-017-1971-y. Epub 2017 Jul 21.
The precise manipulation of acoustic fields in microfluidics is of critical importance for the realization of many biomedical applications. Despite the tremendous efforts devoted to the field of acoustofluidics during recent years, dexterous control, with an arbitrary and complex acoustic wavefront, in a prescribed, microscale region is still out of reach. Here, we introduce the concept of acoustofluidic waveguide, a three-dimensional compact configuration that is capable of locally guiding acoustic waves into a fluidic environment. Through comprehensive numerical simulations, we revealed the possibility of forming complex field patterns with defined pressure nodes within a highly localized, pre-determined region inside the microfluidic chamber. We also demonstrated the tunability of the acoustic field profile through controlling the size and shape of the waveguide geometry, as well as the operational frequency of the acoustic wave. The feasibility of the waveguide concept was experimentally verified via microparticle trapping and patterning. Our acoustofluidic waveguiding structures can be readily integrated with other microfluidic configurations and can be further designed into more complex types of passive acoustofluidic devices. The waveguide platform provides a promising alternative to current acoustic manipulation techniques and is useful in many applications such as single-cell analysis, point-of-care diagnostics, and studies of cell-cell interactions.
在微流控中对声场进行精确操控对于实现许多生物医学应用至关重要。尽管近年来在声流控领域投入了巨大努力,但在规定的微尺度区域内以任意且复杂的声波波前进行灵活控制仍然难以实现。在此,我们引入了声流控波导的概念,这是一种三维紧凑结构,能够将声波局部引导到流体环境中。通过全面的数值模拟,我们揭示了在微流控腔室内高度局部化、预先确定的区域内形成具有特定压力节点的复杂场模式的可能性。我们还通过控制波导几何形状的尺寸和形状以及声波的工作频率,展示了声场分布的可调性。通过微粒捕获和图案化实验验证了波导概念的可行性。我们的声流控波导结构可以很容易地与其他微流控配置集成,并可进一步设计成更复杂类型的无源声流控器件。该波导平台为当前的声学操控技术提供了一种有前景的替代方案,并且在许多应用中都很有用,如单细胞分析、即时诊断以及细胞间相互作用研究。