Behavior of rotating magnetic microrobots above the step-out frequency with application to control of multi-microrobot systems

2014 ◽  
Vol 104 (14) ◽  
pp. 144101 ◽  
Author(s):  
Arthur W. Mahoney ◽  
Nathan D. Nelson ◽  
Kathrin E. Peyer ◽  
Bradley J. Nelson ◽  
Jake J. Abbott
Keyword(s):  
Small ◽  
2019 ◽  
Vol 15 (16) ◽  
pp. 1970086
Author(s):  
Carlos C. J. Alcântara ◽  
Sangwon Kim ◽  
Sunkey Lee ◽  
Bumjin Jang ◽  
Prakash Thakolkaran ◽  
...  

2020 ◽  
Vol 6 (28) ◽  
pp. eaba5855 ◽  
Author(s):  
Veronika Magdanz ◽  
Islam S. M. Khalil ◽  
Juliane Simmchen ◽  
Guilherme P. Furtado ◽  
Sumit Mohanty ◽  
...  

We develop biohybrid magnetic microrobots by electrostatic self-assembly of nonmotile sperm cells and magnetic nanoparticles. Incorporating a biological entity into microrobots entails many functional advantages beyond shape templating, such as the facile uptake of chemotherapeutic agents to achieve targeted drug delivery. We present a single-step electrostatic self-assembly technique to fabricate IRONSperms, soft magnetic microswimmers that emulate the motion of motile sperm cells. Our experiments and theoretical predictions show that the swimming speed of IRONSperms exceeds 0.2 body length/s (6.8 ± 4.1 µm/s) at an actuation frequency of 8 Hz and precision angle of 45°. We demonstrate that the nanoparticle coating increases the acoustic impedance of the sperm cells and enables localization of clusters of IRONSperm using ultrasound feedback. We also confirm the biocompatibility and drug loading ability of these microrobots, and their promise as biocompatible, controllable, and detectable biohybrid tools for in vivo targeted therapy.


Author(s):  
Tiantian Xu ◽  
Antoine Ferreira ◽  
Hongsoo Choi ◽  
Li Zhang

2014 ◽  
Vol 30 (1) ◽  
pp. 26-32 ◽  
Author(s):  
Hsi-Wen Tung ◽  
Massimo Maffioli ◽  
Dominic R. Frutiger ◽  
Kartik M. Sivaraman ◽  
Salvador Pane ◽  
...  
Keyword(s):  

2010 ◽  
Vol 96 (2) ◽  
pp. 024102 ◽  
Author(s):  
Max T. Hou ◽  
Hui-Mei Shen ◽  
Guan-Lin Jiang ◽  
Chiang-Ni Lu ◽  
I-Jen Hsu ◽  
...  

Micromachines ◽  
2021 ◽  
Vol 12 (12) ◽  
pp. 1572
Author(s):  
Junyang Li ◽  
Lei Fan ◽  
Yanfang Li ◽  
Tanyong Wei ◽  
Cheng Wang ◽  
...  

Cell-carrying magnet-driven microrobots are easily affected by blood flow or body fluids during transportation in the body, and thus cells often fall off from the microrobots. To reduce the loss of loaded cells, we developed a microrobot with a bioactive nanostructured titanate surface (NTS), which enhances cell adhesion. The microrobot was fabricated using 3D laser lithography and coated with nickel for magnetic actuation. Then, the microrobot was coated with titanium for the external generation of an NTS through reactions in NaOH solution. Enhanced cell adhesion may be attributed to the changes in the surface wettability of the microrobot and in the morphology of the loaded cells. An experiment was performed on a microfluidic chip for the simulation of blood flow environment, and result revealed that the cells adhered closely to the microrobot with NTS and were not obviously affected by flow. The cell viability and protein absorption test and alkaline phosphatase activity assay indicated that NTS can provide a regulatory means for improving cell proliferation and early osteogenic differentiation. This research provided a novel microrobotic platform that can positively influence the behaviour of cells loaded on microrobots through surface nanotopography, thereby opening up a new route for microrobot cell delivery.


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