论文标题

激光引导的声学镊子

Laser-guided acoustic tweezers

论文作者

Wang, Qing, Chen, Shuhan, Zhou, Jia, Riaud, Antoine

论文摘要

声学镊子可以独立于物体或其培养基的光学,磁性和电性能来操纵微观物体和细胞。但是,由于超声波在几毫米内会减弱,因此现有设备必须在非常狭窄的足迹中合成复杂而强大的声学田,这是紧邻操纵物体的狭窄范围。在这里,我们表明,通过利用声学诱捕力的非线性性质,可以大大简化微观镊子的设计。在我们的实验中,一个无特征的压电晶体涂有光声转换层被电脉冲击中,并在空间调制的激光脉冲中击中,以产生同步的电波和光声波。这些波之间的干扰产生的混合声诱捕力比单独的激光脉冲强30倍,但具有相同的空间信息。通过解散长期以来一直阻碍声学镊子发展的空间分辨率和捕获力之间的权衡,这种田间杂交策略为在芯片和器官印刷机上的器官操作中开辟了新的途径。

Acoustic tweezers can manipulate microscopic objects and cells independently of the optical, magnetic and electrical properties of the objects or their medium. However, because ultrasonic waves are attenuated within few millimeters, existing devices must synthesize intricate and powerful acoustic fields in a very narrow footprint immediately close to the manipulated object. Here we show that the design of microscale acoustic tweezers can be considerably simplified by taking advantage of the nonlinear nature of the acoustic trapping force. In our experiment, a featureless piezoelectric crystal coated with a photoacoustic conversion layer is hit by an electric pulse and a spatially modulated laser pulse to generate synchronized electro- and photo- acoustic waves. Interference between these waves creates a hybrid acoustic trapping force 30 times stronger than the laser pulse alone but with the same spatial information. By disentangling the tradeoff between spatial resolution and trapping force that has long held back the development of acoustic tweezers, this field hybridization strategy opens new avenues for cell manipulation in organ on chip and organ printing.

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