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Lissajous confocal fluorescent endomicroscopy with a lever mechanism and a frequency separation by an asymmetric polymer tube

Title
Lissajous confocal fluorescent endomicroscopy with a lever mechanism and a frequency separation by an asymmetric polymer tube
Author(s)
Im, JintaekChang, YeonheeLee, Myung HoDo, DukhoLee, KyuhangGweon, DaegabSong, Cheol
Issued Date
2023-12
Citation
International Journal of Optomechatronics, v.17, no.1
Type
Article
Author Keywords
confocal endomicroscopyfiber cantileverlever mechanismLissajous scanning
Keywords
HIGH-SPEEDFIBERENDOSCOPESCANNER
ISSN
1559-9612
Abstract
We present a confocal fluorescent endomicroscopic system with a Lissajous scan using an asymmetric polymer tube and piezoelectric (PZT) tube actuator. The fiber cantilever’s scanning part is often inside the PZT tube actuator to reduce the scanner’s rigid length and enhance the beam deflection via a lever mechanism. Here, the mathematical model of the PZT tube actuator-based lever mechanism is first proposed by considering the piezoelectric parameters of the actuator and Euler-Bernoulli beam deflection, showing a good agreement with experimental data. In addition, an elliptical polymer tube is used to divide the resonant frequencies of the fiber cantilever, allowing enough scanning amplitudes and alleviating the inherent cross-coupling issue of a PZT tube actuator. The design optimization is performed by selecting the optimal lever length and the shape of the PFA tube. The implemented endomicroscopic probe could successfully acquire imaging results from both a lens-cleaning tissue and an ex-vivo mouse colon. © 2023 The Author(s). Published with license by Taylor & Francis Group, LLC.
URI
http://hdl.handle.net/20.500.11750/47527
DOI
10.1080/15599612.2023.2238009
Publisher
Taylor and Francis
Related Researcher
  • 송철 Song, Cheol
  • Research Interests Handheld medical robotics; Smart robotic microsurgery; Smart neuro-rehabilitation; Bio-photonic sensing and imaging
Files in This Item:
001036271600001.pdf

001036271600001.pdf

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Appears in Collections:
Department of Robotics and Mechatronics Engineering Intelligent Bio-OptoMechatronics Lab 1. Journal Articles

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