TY - JOUR
T1 - Non-Contact Dexterous Micromanipulation With Multiple Optoelectronic Robots
AU - Jia, Yongyi
AU - Miao, Shu
AU - Wang, Ao
AU - Ni, Caiding
AU - Feng, Lin
AU - Wang, Xiaowo
AU - Li, Xiang
N1 - Publisher Copyright:
© 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - Micromanipulation systems leverage automation and robotic technologies to improve the precision, repeatability, and efficiency of various tasks at the microscale. However, current approaches are typically limited to specific objects or tasks, which necessitates the use of custom tools and specialized grasping methods. This letter proposes a novel non-contact micromanipulation method based on optoelectronic technologies. The proposed method utilizes repulsive dielectrophoretic forces generated in the optoelectronic field to drive a microrobot, enabling the microrobot to push the target object in a cluttered environment without physical contact. The non-contact feature can minimize the risks of potential damage, contamination, or adhesion while largely improving the flexibility of manipulation. The feature enables the use of a general tool for indirect object manipulation, eliminating the need for specialized tools. A series of simulation studies and real-world experiments - including non-contact trajectory tracking, obstacle avoidance, and reciprocal avoidance between multiple microrobots - are conducted to validate the performance of the proposed method. The proposed formulation provides a general and dexterous solution for a range of objects and tasks at the micro scale.
AB - Micromanipulation systems leverage automation and robotic technologies to improve the precision, repeatability, and efficiency of various tasks at the microscale. However, current approaches are typically limited to specific objects or tasks, which necessitates the use of custom tools and specialized grasping methods. This letter proposes a novel non-contact micromanipulation method based on optoelectronic technologies. The proposed method utilizes repulsive dielectrophoretic forces generated in the optoelectronic field to drive a microrobot, enabling the microrobot to push the target object in a cluttered environment without physical contact. The non-contact feature can minimize the risks of potential damage, contamination, or adhesion while largely improving the flexibility of manipulation. The feature enables the use of a general tool for indirect object manipulation, eliminating the need for specialized tools. A series of simulation studies and real-world experiments - including non-contact trajectory tracking, obstacle avoidance, and reciprocal avoidance between multiple microrobots - are conducted to validate the performance of the proposed method. The proposed formulation provides a general and dexterous solution for a range of objects and tasks at the micro scale.
KW - Optoelectronic manipulation
KW - multiple microrobots
KW - non-contact methods
UR - https://www.scopus.com/pages/publications/105001598601
U2 - 10.1109/LRA.2025.3551538
DO - 10.1109/LRA.2025.3551538
M3 - 文章
AN - SCOPUS:105001598601
SN - 2377-3766
VL - 10
SP - 4412
EP - 4419
JO - IEEE Robotics and Automation Letters
JF - IEEE Robotics and Automation Letters
IS - 5
ER -