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Abstract

Manipulation of Microrobots Using Chladni Plates and Multimode Membrane Resonators †

United States Naval Academy, Electrical and Computer Engineering Department, Annapolis, MD 21402, USA
*
Author to whom correspondence should be addressed.
Presented at the 1st International Conference on Micromachines and Applications, 15–30 April 2021; Available online: https://micromachines2021.sciforum.net/.
Published: 16 April 2021
(This article belongs to the Proceedings of The 1st International Conference on Micromachines and Applications)

Abstract

:
(1) The advent of micro/nanorobotics promises to transform the physical, chemical, and biological domains by harnessing opportunities otherwise limited by size. Most notable is the biomedical field, in which the ability to manipulate micro/nanoparticles has numerous applications in biophysics, drug delivery, tissue engineering, and microsurgery. (2) Acoustics, the physics of vibrational waves through matter, offers a precise, accurate, and minimally invasive technique to manipulate microrobots or microparticles (stand-ins for microrobots). One example is through the use of flexural vibrations induced in resonant structures such as Chladni plates. (3) In this research, we developed a platform for precise two-dimensional microparticle manipulation via acoustic forces arising from Chladni figures and resonating microscale membranes. The project included two distinct phases: (i) macroscale manipulation with a Chladni plate in air; and (ii) microscale manipulation using microscale membranes in liquid. In the first phase (macroscale in air), we reproduced previous studies in order to gain a better understanding of the underlying physics and to develop control algorithms based on statistical modeling techniques. In the second phase (microscale in liquid), we developed and tested a new setup using custom microfabricated structures. The macroscale statistical modeling techniques were integrated with microscale autonomous control systems. It is shown that control methods developed on the macroscale can be implemented and used on the microscale with good precision and accuracy.

Supplementary Materials

The supplementary material is available at https://www.mdpi.com/article/10.3390/Micromachines2021-09593/s1.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

Not applicable.
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MDPI and ACS Style

Usadi, L.N.; Yee, S.; ElBidweihy, H.; Firebaugh, S. Manipulation of Microrobots Using Chladni Plates and Multimode Membrane Resonators. Eng. Proc. 2021, 4, 39. https://doi.org/10.3390/Micromachines2021-09593

AMA Style

Usadi LN, Yee S, ElBidweihy H, Firebaugh S. Manipulation of Microrobots Using Chladni Plates and Multimode Membrane Resonators. Engineering Proceedings. 2021; 4(1):39. https://doi.org/10.3390/Micromachines2021-09593

Chicago/Turabian Style

Usadi, Lillian Ngo, Steven Yee, Hatem ElBidweihy, and Samara Firebaugh. 2021. "Manipulation of Microrobots Using Chladni Plates and Multimode Membrane Resonators" Engineering Proceedings 4, no. 1: 39. https://doi.org/10.3390/Micromachines2021-09593

APA Style

Usadi, L. N., Yee, S., ElBidweihy, H., & Firebaugh, S. (2021). Manipulation of Microrobots Using Chladni Plates and Multimode Membrane Resonators. Engineering Proceedings, 4(1), 39. https://doi.org/10.3390/Micromachines2021-09593

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