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Wave number–spiral acoustic tweezers for dynamic and reconfigurable manipulation of particles and cells

机译:波数–螺旋声镊,用于动态和可重构地操纵粒子和细胞

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Acoustic tweezers have recently raised great interest across many fields including biology, chemistry, engineering, and medicine, as they can perform contactless, label-free, biocompatible, and precise manipulation of particles and cells. Here, we present wave number–spiral acoustic tweezers, which are capable of dynamically reshaping surface acoustic wave (SAW) wavefields to various pressure distributions to facilitate dynamic and programmable particle/cell manipulation. SAWs propagating in multiple directions can be simultaneously and independently controlled by simply modulating the multitone excitation signals. This allows for dynamic reshaping of SAW wavefields to desired distributions, thus achieving programmable particle/cell manipulation. We experimentally demonstrated the multiple functions of wave number–spiral acoustic tweezers, among which are multiconfiguration patterning; parallel merging; pattern translation, transformation, and rotation; and dynamic translation of single microparticles along complex paths. This wave number–spiral design has the potential to revolutionize future acoustic tweezers development and advance many applications, including microscale assembly, bioprinting, and cell-cell interaction research.
机译:声镊子最近可以引起许多领域的兴趣,包括生物学,化学,工程学和医学,因为它们可以执行非接触,无标记,生物相容性以及对颗粒和细胞的精确操纵。在这里,我们介绍了波数螺旋声镊,它能够将表面声波(SAW)波场动态地重塑为各种压力分布,以促进动态和可编程的粒子/单元操纵。通过简单地调制多音激励信号,可以同时独立地控制在多个方向上传播的声表面波。这允许将SAW波场动态重塑为所需的分布,从而实现可编程的粒子/单元操作。我们通过实验证明了波数–螺旋声镊的多种功能,其中包括多配置模式;并行合并;模式平移,变换和旋转;沿复杂路径动态转换单个微粒。这种波数螺旋设计有可能彻底改变未来的声镊,并推动许多应用,包括微型装配,生物打印和细胞间相互作用研究。

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