Abstract

Rotation and transportation of micro-particles using ultrasonically-driven devices shows promising applications in the fields of biological engineering, composite material manufacture, and micro-assembly. Current interest in mechanical effects of ultrasonic waves has been stimulated by the achievements in manipulations with phased array. Here, we propose a field synthesizing method using the fewest transducers to control the orientation of a single non-spherical micro-particle as well as its spatial location. A localized acoustic force potential well is established and rotated by using sound field synthesis technique. The resultant acoustic radiation torque on the trapped target determines its equilibrium angular position. A prototype device consisting of nine transducers with 2 MHz center frequency is designed and fabricated. Controllable rotation of a silica rod with 90 μm length and 15 μm diameter is then successfully achieved. There is a good agreement between the measured particle orientation and the theoretical prediction. Within the same device, spatial translation of the silica rod can also be realized conveniently. When compared with the existing acoustic rotation methods, the employed transducers of our method are strongly decreased, meanwhile, device functionality is improved.

Highlights

  • Contactless rotation of cells and micro-organisms is indispensable in cell analysis and biology engineering [1,2,3,4,5,6]

  • Precision is calibratedisatcalibrated the pedestal by using a needle hydrophone

  • To obtain the phase differences,signal a synchronous signal by thatthe is Dorchester, UK).Dorchester, To obtain the phase differences, a synchronous that is triggered triggered bydriving the transducer is used as the reference

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Summary

Introduction

Contactless rotation of cells and micro-organisms is indispensable in cell analysis and biology engineering [1,2,3,4,5,6]. Rotation analysis of the cellular sample is employed to improve the inspection efficiency, by which the infected sample can be identified by the rotation speed difference from the normal one [6]. Different field effects generating from optical, electric, magnetic, and acoustic have been demonstrated to possess the ability of contactless manipulating micro-objects [11,12,13,14]. Among these methods, the acoustic field shows outstanding features in the forms of biocompatibility, miniaturized excitation facility, low system cost, Appl.

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