Fish-like magnetic microrobots for microparts transporting at liquid surfaces

被引:7
作者
Wang, Lefeng [1 ,2 ]
Zhao, Min [2 ]
He, Yuanzhe [2 ]
Ding, Sizhe [2 ]
Sun, Lining [2 ]
机构
[1] Harbin Univ Sci & Technol, Heilongjiang Prov Key Lab Complex Intelligent Syst, Harbin 150080, Peoples R China
[2] Harbin Inst Technol, State Key Lab Robot & Syst, Harbin 150001, Peoples R China
关键词
WATER; ROBOT;
D O I
10.1039/d2sm01436j
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Magnetic microrobots have tremendous potential applications due to their wireless actuation and fast response in confined spaces. Herein, inspired by fish, a magnetic microrobot working at liquid surfaces was proposed in order to transport microparts effectively. Different from other fish-like robots propelled by flexible caudal fins, the microrobot is designed as a simple sheet structure with a streamlined shape. It is fabricated monolithically utilizing polydimethylsiloxane doped with magnetic particles. The unequal thicknesses of different parts of the fish shape enable the microrobot to move faster via a liquid level difference around the body under an oscillating magnetic field. The propulsion mechanism is investigated through theoretical analysis and simulations. The motion performance characteristics are further characterized through experiments. It is interesting to find that the microrobot moves in a head-forward mode when the vertical magnetic field component is upward, whereas it moves in a tail-forward mode when the component is downward. Relying on the modulation of capillary forces, the microrobot is able to capture and deliver microballs along a given path. The maximum transporting speed can reach 1.2 mm s(-1), which is about three times the microball diameter per second. It is also found that the transporting speed with the microball is much higher than that of the microrobot alone. The reason for this is that when the micropart and microrobot combine, the increased asymmetry of the liquid surfaces caused by the forward movement of the gravity center can increase the forward driving force. The proposed microrobot and the transporting method are expected to have more applications in micromanipulation fields.
引用
收藏
页码:2883 / 2890
页数:9
相关论文
共 45 条
[1]   Fabrication and magnetic control of bacteria-inspired robotic microswimmers [J].
Cheang, U. Kei ;
Roy, Dheeraj ;
Lee, Jun Hee ;
Kim, Min Jun .
APPLIED PHYSICS LETTERS, 2010, 97 (21)
[2]   Fully plastic microrobots which manipulate objects using only visible light [J].
Cheng, Futao ;
Yin, Ruoyuan ;
Zhang, Yuanyuan ;
Yen, Chu-Chun ;
Yu, Yanlei .
SOFT MATTER, 2010, 6 (15) :3447-3449
[3]   3D-printed transmembrane glycoprotein cancer biomarker aptasensor [J].
Crevillen, Agustin G. ;
Mayorga-Martinez, Carmen C. ;
Zelenka, Jaroslav ;
Rimpelova, Silvie ;
Ruml, Tomas ;
Pumera, Martin .
APPLIED MATERIALS TODAY, 2021, 24
[4]   Continuously distributed magnetization profile for millimeter-scale elastomeric undulatory swimming [J].
Diller, Eric ;
Zhuang, Jiang ;
Lum, Guo Zhan ;
Edwards, Matthew R. ;
Sitti, Metin .
APPLIED PHYSICS LETTERS, 2014, 104 (17)
[5]   Microscopic artificial swimmers [J].
Dreyfus, R ;
Baudry, J ;
Roper, ML ;
Fermigier, M ;
Stone, HA ;
Bibette, J .
NATURE, 2005, 437 (7060) :862-865
[6]   High-precision motion of magnetic microrobot with ultrasonic levitation for 3-D rotation of single oocyte [J].
Feng, Lin ;
Di, Pei ;
Arai, Fumihito .
INTERNATIONAL JOURNAL OF ROBOTICS RESEARCH, 2016, 35 (12) :1445-1458
[7]   Design and development of the lifting and propulsion mechanism for a biologically inspired water runner robot [J].
Floyd, Steven ;
Sitti, Metin .
IEEE TRANSACTIONS ON ROBOTICS, 2008, 24 (03) :698-709
[8]   A novel water running robot inspired by basilisk lizards [J].
Floyd, Steven ;
Keegan, Terence ;
Palmisano, John ;
Sitti, Metin .
2006 IEEE/RSJ INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS, VOLS 1-12, 2006, :5430-+
[9]   Magnetocapillary self-assemblies: Locomotion and micromanipulation along a liquid interface [J].
Grosjean, G. ;
Hubert, M. ;
Vandewalle, N. .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2018, 255 :84-93
[10]   Remote control of self-assembled microswimmers [J].
Grosjean, G. ;
Lagubeau, G. ;
Darras, A. ;
Hubert, M. ;
Lumay, G. ;
Vandewalle, N. .
SCIENTIFIC REPORTS, 2015, 5