Publication: 3D-printed micrometer-scale wireless magnetic cilia with metachronal programmability
Program
KU-Authors
KU Authors
Co-Authors
Zhang, Shuaizhong
Hu, Xinghao
Li, Meng
Bozuyuk, Ugur
Zhang, Rongjing
Suadiye, Eylul
Han, Jie
Wang, Fan
Onck, Patrick
Advisor
Publication Date
2023
Language
en
Type
Journal article
Journal Title
Journal ISSN
Volume Title
Abstract
Biological cilia play essential roles in self-propulsion, food capture, and cell transportation by performing coor-dinated metachronal motions. Experimental studies to emulate the biological cilia metachronal coordination are challenging at the micrometer length scale because of current limitations in fabrication methods and ma-terials. We report on the creation of wirelessly actuated magnetic artificial cilia with biocompatibility and meta-chronal programmability at the micrometer length scale. Each cilium is fabricated by direct laser printing a silk fibroin hydrogel beam affixed to a hard magnetic FePt Janus microparticle. The 3D-printed cilia show stable actuation performance, high temperature resistance, and high mechanical endurance. Programmable meta-chronal coordination can be achieved by programming the orientation of the identically magnetized FePt Janus microparticles, which enables the generation of versatile microfluidic patterns. Our platform offers an unprecedented solution to create bioinspired microcilia for programmable microfluidic systems, biomedical en-gineering, and biocompatible implants.
Description
Source:
Science Advances
Publisher:
Amer Assoc Advancement Science
Keywords:
Subject
Multidisciplinary sciences