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Acoustic tweezers via sub–time-of-flight regime surface acoustic waves

机译:通过次飞行时间表面声波的声镊

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摘要

Micrometer-scale acoustic waves are highly useful for refined optomechanical and acoustofluidic manipulation, where these fields are spatially localized along the transducer aperture but not along the acoustic propagation direction. In the case of acoustic tweezers, such a conventional acoustic standing wave results in particle and cell patterning across the entire width of a microfluidic channel, preventing selective trapping. We demonstrate the use of nanosecond-scale pulsed surface acoustic waves (SAWs) with a pulse period that is less than the time of flight between opposing transducers to generate localized time-averaged patterning regions while using conventional electrode structures. These nodal positions can be readily and arbitrarily positioned in two dimensions and within the patterning region itself through the imposition of pulse delays, frequency modulation, and phase shifts. This straightforward concept adds new spatial dimensions to which acoustic fields can be localized in SAW applications in a manner analogous to optical tweezers, including spatially selective acoustic tweezers and optical waveguides.
机译:微米级声波对于精细的光机械和声流体操纵非常有用,其中这些场沿换能器孔径而不是沿声传播方向在空间上局部化。在声学镊子的情况下,这种常规的声驻波导致在微流体通道的整个宽度上形成颗粒和细胞图案,从而防止了选择性捕获。我们演示了使用纳秒级脉冲表面声波(SAW),其脉冲周期小于相对换能器之间的飞行时间,从而在使用常规电极结构的同时生​​成局部时间平均的图案化区域。通过施加脉冲延迟,频率调制和相移,这些节点位置可以容易地和任意地定位在二维中并且在图案化区域本身内。这个简单的概念增加了新的空间尺寸,可以在声表面波应用中以类似于光镊的方式将声场定位到其中,包括空间选择性声镊和光波导。

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