Magnetically Powered Biodegradable Microswimmers
The propulsive efficiency and biodegradability of wireless microrobots play a significant role in facilitating promising biomedical applications. Mimicking biological matters is a promising way to improve the performance of microrobots. Among diverse locomotion strategies, undulatory propulsion show...
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doaj-624f0ff92dd14fb683707086f7eec1bc2020-11-25T02:33:57ZengMDPI AGMicromachines2072-666X2020-04-011140440410.3390/mi11040404Magnetically Powered Biodegradable MicroswimmersHo Cheung Michael Sun0Pan Liao1Tanyong Wei2Li Zhang3Dong Sun4King George V School, Hong Kong 999077, ChinaDepartment of Biomedical Engineering, City University of Hong Kong, Hong Kong 999077, ChinaDepartment of Biomedical Engineering, City University of Hong Kong, Hong Kong 999077, ChinaDepartment of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong 999077, ChinaDepartment of Biomedical Engineering, City University of Hong Kong, Hong Kong 999077, ChinaThe propulsive efficiency and biodegradability of wireless microrobots play a significant role in facilitating promising biomedical applications. Mimicking biological matters is a promising way to improve the performance of microrobots. Among diverse locomotion strategies, undulatory propulsion shows remarkable efficiency and agility. This work proposes a novel magnetically powered and hydrogel-based biodegradable microswimmer. The microswimmer is fabricated integrally by 3D laser lithography based on two-photon polymerization from a biodegradable material and has a total length of 200 μm and a diameter of 8 μm. The designed microswimmer incorporates a novel design utilizing four rigid segments, each of which is connected to the succeeding segment by spring to achieve undulation, improving structural integrity as well as simplifying the fabrication process. Under an external oscillating magnetic field, the microswimmer with multiple rigid segments connected by flexible spring can achieve undulatory locomotion and move forward along with the directions guided by the external magnetic field in the low Reynolds number (Re) regime. In addition, experiments demonstrated that the microswimmer can be degraded successfully, which allows it to be safely applied in real-time in vivo environments. This design has great potential in future in vivo applications such as precision medicine, drug delivery, and diagnosis.https://www.mdpi.com/2072-666X/11/4/404microswimmerbiodegradablemagnetically poweredstructural integrity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ho Cheung Michael Sun Pan Liao Tanyong Wei Li Zhang Dong Sun |
spellingShingle |
Ho Cheung Michael Sun Pan Liao Tanyong Wei Li Zhang Dong Sun Magnetically Powered Biodegradable Microswimmers Micromachines microswimmer biodegradable magnetically powered structural integrity |
author_facet |
Ho Cheung Michael Sun Pan Liao Tanyong Wei Li Zhang Dong Sun |
author_sort |
Ho Cheung Michael Sun |
title |
Magnetically Powered Biodegradable Microswimmers |
title_short |
Magnetically Powered Biodegradable Microswimmers |
title_full |
Magnetically Powered Biodegradable Microswimmers |
title_fullStr |
Magnetically Powered Biodegradable Microswimmers |
title_full_unstemmed |
Magnetically Powered Biodegradable Microswimmers |
title_sort |
magnetically powered biodegradable microswimmers |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2020-04-01 |
description |
The propulsive efficiency and biodegradability of wireless microrobots play a significant role in facilitating promising biomedical applications. Mimicking biological matters is a promising way to improve the performance of microrobots. Among diverse locomotion strategies, undulatory propulsion shows remarkable efficiency and agility. This work proposes a novel magnetically powered and hydrogel-based biodegradable microswimmer. The microswimmer is fabricated integrally by 3D laser lithography based on two-photon polymerization from a biodegradable material and has a total length of 200 μm and a diameter of 8 μm. The designed microswimmer incorporates a novel design utilizing four rigid segments, each of which is connected to the succeeding segment by spring to achieve undulation, improving structural integrity as well as simplifying the fabrication process. Under an external oscillating magnetic field, the microswimmer with multiple rigid segments connected by flexible spring can achieve undulatory locomotion and move forward along with the directions guided by the external magnetic field in the low Reynolds number (Re) regime. In addition, experiments demonstrated that the microswimmer can be degraded successfully, which allows it to be safely applied in real-time in vivo environments. This design has great potential in future in vivo applications such as precision medicine, drug delivery, and diagnosis. |
topic |
microswimmer biodegradable magnetically powered structural integrity |
url |
https://www.mdpi.com/2072-666X/11/4/404 |
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