TY - JOUR
T1 - Noncontact 3-D Orientation Control at Microscale
T2 - Hydrodynamic Out-of-Plane Rotation and In-Plane Rotation by Compacted Rotational Stage
AU - Liu, Xiaoming
AU - Li, Yuyang
AU - Li, Lei
AU - Kojima, Masaru
AU - Shi, Qing
AU - Huang, Qiang
AU - Fukuda, Toshio
AU - Arai, Tatsuo
N1 - Publisher Copyright:
© 1996-2012 IEEE.
PY - 2022/12/1
Y1 - 2022/12/1
N2 - In cloning, clinical in vitro fertilization, gene research, and stem cell research, enucleation or injection of the individual cell is essential. Three-dimensional (3-D) orientation control of the target cell could significantly influence the operation success rate, which is still one of the main challenges in conventional micromanipulation. In this article, we give a cost-effective solution of the 3-D orientation control at the microscale combining the hydrodynamic out-of-plane rotation and the in-plane rotation by compacted rotational stage. We equipped a standard microinjection system with a single piezo-actuator and a 3-D printed compacted rotational stage. Using the resonance of the designed copper cantilever as the pipette holder and the Lissajous Principle, we extended the 1-D oscillation of the piezo-actuator to 2-D circular oscillation of the injecting micropipette. The circular oscillation could generate a whirling flow for noncontact immobilization and out-of-plane rotation of the target. After the out-of-plane rotation, the rotational stage was employed to realize the in-plane rotation, and a holding-position control strategy was proposed to compensate circular motion in global of the target. The performance of these two rotation methods has been tested by rotating microbeads with outer diameters of 98 μm. 3-D orientation control of the microbead and the mouse oocyte has been achieved, which indicates that the proposed method could be widely applied in the biomedical field.
AB - In cloning, clinical in vitro fertilization, gene research, and stem cell research, enucleation or injection of the individual cell is essential. Three-dimensional (3-D) orientation control of the target cell could significantly influence the operation success rate, which is still one of the main challenges in conventional micromanipulation. In this article, we give a cost-effective solution of the 3-D orientation control at the microscale combining the hydrodynamic out-of-plane rotation and the in-plane rotation by compacted rotational stage. We equipped a standard microinjection system with a single piezo-actuator and a 3-D printed compacted rotational stage. Using the resonance of the designed copper cantilever as the pipette holder and the Lissajous Principle, we extended the 1-D oscillation of the piezo-actuator to 2-D circular oscillation of the injecting micropipette. The circular oscillation could generate a whirling flow for noncontact immobilization and out-of-plane rotation of the target. After the out-of-plane rotation, the rotational stage was employed to realize the in-plane rotation, and a holding-position control strategy was proposed to compensate circular motion in global of the target. The performance of these two rotation methods has been tested by rotating microbeads with outer diameters of 98 μm. 3-D orientation control of the microbead and the mouse oocyte has been achieved, which indicates that the proposed method could be widely applied in the biomedical field.
KW - Micro/nanorobotics
KW - micromanipulation
KW - oocyte
KW - orientation control
KW - single cell operation
UR - http://www.scopus.com/inward/record.url?scp=85129453419&partnerID=8YFLogxK
U2 - 10.1109/TMECH.2022.3164263
DO - 10.1109/TMECH.2022.3164263
M3 - Article
AN - SCOPUS:85129453419
SN - 1083-4435
VL - 27
SP - 4807
EP - 4818
JO - IEEE/ASME Transactions on Mechatronics
JF - IEEE/ASME Transactions on Mechatronics
IS - 6
ER -