Force characterization and analysis of thin film actuators for untethered microdevices

In recent years, untethered microdevices have drawn significant attention due to their small size, weight and their ability to exert forces without the need for wires or tethers. Such microdevices are relevant to implantable biomedical devices, miniature robotics, minimally invasive surgery, and mic...

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Main Authors: Federico Ongaro, Qianru Jin, Ugo Siciliani de Cumis, Arijit Ghosh, Alper Denasi, David H. Gracias, Sarthak Misra
Format: Article
Language:English
Published: AIP Publishing LLC 2019-05-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5088779
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spelling doaj-6aa1aeef6212486eb8cb70f2504c20bd2020-11-24T20:57:57ZengAIP Publishing LLCAIP Advances2158-32262019-05-0195055011055011-510.1063/1.5088779040905ADVForce characterization and analysis of thin film actuators for untethered microdevicesFederico Ongaro0Qianru Jin1Ugo Siciliani de Cumis2Arijit Ghosh3Alper Denasi4David H. Gracias5Sarthak Misra6Surgical Robotics Laboratory, Department of Biomechanical Engineering, University of Twente, Enschede 7522 NB, The NetherlandsDepartment of Chemical and Biomolecular Engineering, The Johns Hopkins University, Baltimore, Maryland 21218, USASurgical Robotics Laboratory, Department of Biomechanical Engineering, University of Twente, Enschede 7522 NB, The NetherlandsDepartment of Chemical and Biomolecular Engineering, The Johns Hopkins University, Baltimore, Maryland 21218, USASurgical Robotics Laboratory, Department of Biomedical Engineering, University of Groningen and University Medical Centre Groningen, Groningen 9713 GZ, The NetherlandsDepartment of Chemical and Biomolecular Engineering, The Johns Hopkins University, Baltimore, Maryland 21218, USASurgical Robotics Laboratory, Department of Biomechanical Engineering, University of Twente, Enschede 7522 NB, The NetherlandsIn recent years, untethered microdevices have drawn significant attention due to their small size, weight and their ability to exert forces without the need for wires or tethers. Such microdevices are relevant to implantable biomedical devices, miniature robotics, minimally invasive surgery, and microelectromechanical systems. While devices using these actuators have been widely utilized in pick-and-place and biopsy applications, the forces exerted by these actuators have yet to be characterized and analyzed. Lack of precise force measurements and validated models impedes the clinical applicability and safety of such thin film microsurgical devices. Furthermore, present-day design of thin film microdevices for targeted applications requires an iterative trial-and-error process. In order to address these issues, we present a novel technique to measure the force output of thin film microactuators. Also, we develop and fabricate three designs of residual stress microactuators and use them to validate this technique, and establish a relationship between performance and design parameters. In particular, we find an inverse dependence of the thickness of the actuator and its force output, with 70 nm, 115 nm and 200 nm actuators exerting 7.8 μN, 4.7 μN, and 2.7 μN, respectively. Besides these findings, we anticipate that this microsystem measurement approach could be used for force measurements on alternate microactuators including shape memory, piezo and electromagnetic actuators.http://dx.doi.org/10.1063/1.5088779
collection DOAJ
language English
format Article
sources DOAJ
author Federico Ongaro
Qianru Jin
Ugo Siciliani de Cumis
Arijit Ghosh
Alper Denasi
David H. Gracias
Sarthak Misra
spellingShingle Federico Ongaro
Qianru Jin
Ugo Siciliani de Cumis
Arijit Ghosh
Alper Denasi
David H. Gracias
Sarthak Misra
Force characterization and analysis of thin film actuators for untethered microdevices
AIP Advances
author_facet Federico Ongaro
Qianru Jin
Ugo Siciliani de Cumis
Arijit Ghosh
Alper Denasi
David H. Gracias
Sarthak Misra
author_sort Federico Ongaro
title Force characterization and analysis of thin film actuators for untethered microdevices
title_short Force characterization and analysis of thin film actuators for untethered microdevices
title_full Force characterization and analysis of thin film actuators for untethered microdevices
title_fullStr Force characterization and analysis of thin film actuators for untethered microdevices
title_full_unstemmed Force characterization and analysis of thin film actuators for untethered microdevices
title_sort force characterization and analysis of thin film actuators for untethered microdevices
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2019-05-01
description In recent years, untethered microdevices have drawn significant attention due to their small size, weight and their ability to exert forces without the need for wires or tethers. Such microdevices are relevant to implantable biomedical devices, miniature robotics, minimally invasive surgery, and microelectromechanical systems. While devices using these actuators have been widely utilized in pick-and-place and biopsy applications, the forces exerted by these actuators have yet to be characterized and analyzed. Lack of precise force measurements and validated models impedes the clinical applicability and safety of such thin film microsurgical devices. Furthermore, present-day design of thin film microdevices for targeted applications requires an iterative trial-and-error process. In order to address these issues, we present a novel technique to measure the force output of thin film microactuators. Also, we develop and fabricate three designs of residual stress microactuators and use them to validate this technique, and establish a relationship between performance and design parameters. In particular, we find an inverse dependence of the thickness of the actuator and its force output, with 70 nm, 115 nm and 200 nm actuators exerting 7.8 μN, 4.7 μN, and 2.7 μN, respectively. Besides these findings, we anticipate that this microsystem measurement approach could be used for force measurements on alternate microactuators including shape memory, piezo and electromagnetic actuators.
url http://dx.doi.org/10.1063/1.5088779
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