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Particle trapping for acoustic tweezers

机译:声学镊子的颗粒捕集

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The optical tweezers has been found to have many biomedical applications in trapping macromolecules and cells. A recent theoretical study has shown that under appropriate conditions acoustic trapping is also possible [1]. Compared to the optical tweezers, the acoustic tweezers is more useful in light opaque media. In this paper, first we present the range where a particle can be trapped in single focused field along the axial direction from a 100MHz concave circular transducer on various sizes of particles. Secondly, we also proposed a multitrap model of acoustic tweezers which can trap 4 particles simultaneously. A 100MHz 2-D phased array with each line composed of 80 elements was used to generate and control the multiple-focus acoustic field. Both of the two fields generated by concave circular and phased array transducer were evaluated based on finite-element model. The radiation force was computed by the momentum transfer occurs between the mediums inside and outside the particle according to the law of conservation. The result demonstrates that the acoustic tweezers not only can manipulate larger particles, but also owns the feasibility of multitrap.
机译:已经发现光镊在捕获大分子和细胞中具有许多生物医学应用。最近的理论研究表明,在适当的条件下,声陷波也是可能的[1]。与光学镊子相比,声学镊子在不透光的介质中更有用。在本文中,首先,我们介绍了一个范围,在该范围内,粒子可以从100MHz凹面圆形换能器沿轴向的单个聚焦场中捕获在各种尺寸的粒子上。其次,我们还提出了一种声镊的多陷阱模型,该模型可以同时捕获4个粒子。每条线由80个元素组成的100MHz二维相控阵用于生成和控制多焦点声场。基于有限元模型评估了凹面圆形和相控阵换能器产生的两个场。辐射力是根据守恒定律通过在粒子内部和外部的介质之间发生的动量传递来计算的。结果表明,声镊不仅可以操纵较大的颗粒,而且具有多阱的可行性。

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