Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves
A method based on standing surface acoustic waves (SSAWs) is proposed to pattern and manipulate microparticles into a three-dimensional (3D) matrix inside a microchamber. An optical prism is used to observe the 3D alignment and patterning of the microparticles in the vertical and horizontal planes s...
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sg-ntu-dr.10356-831372020-09-26T22:06:04Z Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves Nguyen, Tan Dai Tran, Van Thai Fu, Yong Qing Du, Hejun School of Mechanical and Aerospace Engineering Singapore Centre for 3D Printing Microparticles Standing Surface Acoustic Waves DRNTU::Engineering::Mechanical engineering A method based on standing surface acoustic waves (SSAWs) is proposed to pattern and manipulate microparticles into a three-dimensional (3D) matrix inside a microchamber. An optical prism is used to observe the 3D alignment and patterning of the microparticles in the vertical and horizontal planes simultaneously. The acoustic radiation force effectively patterns the microparticles into lines of 3D space or crystal-lattice-like matrix patterns. A microparticle can be positioned precisely at a specified vertical location by balancing the forces of acoustic radiation, drag, buoyancy, and gravity acting on the microparticle. Experiments and finite-element numerical simulations both show that the acoustic radiation force increases gradually from the bottom of the chamber to the top, and microparticles can be moved up or down simply by adjusting the applied SSAW power. Our method has great potential for acoustofluidic applications, building the large-scale structures associated with biological objects and artificial neuron networks. MOE (Min. of Education, S’pore) Published version 2019-01-30T02:31:57Z 2019-12-06T15:12:30Z 2019-01-30T02:31:57Z 2019-12-06T15:12:30Z 2018 Journal Article Nguyen, T. D., Tran, V. T., Fu, Y. Q., & Du, H. (2018). Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves. Applied Physics Letters, 112(21), 213507-. doi:10.1063/1.5024888 0003-6951 https://hdl.handle.net/10356/83137 http://hdl.handle.net/10220/47587 10.1063/1.5024888 en Applied Physics Letters © 2018 The Author(s) . All rights reserved. This paper was published by AIP Publishing in Applied Physics Letters and is made available with permission of The Author(s) . 5 p. application/pdf |
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Microparticles Standing Surface Acoustic Waves DRNTU::Engineering::Mechanical engineering Nguyen, Tan Dai Tran, Van Thai Fu, Yong Qing Du, Hejun Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
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A method based on standing surface acoustic waves (SSAWs) is proposed to pattern and manipulate microparticles into a three-dimensional (3D) matrix inside a microchamber. An optical prism is used to observe the 3D alignment and patterning of the microparticles in the vertical and horizontal planes simultaneously. The acoustic radiation force effectively patterns the microparticles into lines of 3D space or crystal-lattice-like matrix patterns. A microparticle can be positioned precisely at a specified vertical location by balancing the forces of acoustic radiation, drag, buoyancy, and gravity acting on the microparticle. Experiments and finite-element numerical simulations both show that the acoustic radiation force increases gradually from the bottom of the chamber to the top, and microparticles can be moved up or down simply by adjusting the applied SSAW power. Our method has great potential for acoustofluidic applications, building the large-scale structures associated with biological objects and artificial neuron networks. |
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School of Mechanical and Aerospace Engineering |
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School of Mechanical and Aerospace Engineering Nguyen, Tan Dai Tran, Van Thai Fu, Yong Qing Du, Hejun |
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Article |
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Nguyen, Tan Dai Tran, Van Thai Fu, Yong Qing Du, Hejun |
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Nguyen, Tan Dai |
title |
Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
title_short |
Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
title_full |
Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
title_fullStr |
Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
title_full_unstemmed |
Patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
title_sort |
patterning and manipulating microparticles into a three-dimensional matrix using standing surface acoustic waves |
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2019 |
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https://hdl.handle.net/10356/83137 http://hdl.handle.net/10220/47587 |
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1681056847589539840 |