| Literature DB >> 26029795 |
Bumjin Jang1, Emiliya Gutman2, Nicolai Stucki1, Benedikt F Seitz1, Pedro D Wendel-García1, Taylor Newton1, Juho Pokki1, Olgaç Ergeneman1, Salvador Pané1, Yizhar Or2, Bradley J Nelson1.
Abstract
Micro- and nanorobots operating in low Reynolds number fluid environments require specialized swimming strategies for efficient locomotion. Prior research has focused on designs mimicking the rotary corkscrew motion of bacterial flagella or the planar beating motion of eukaryotic flagella. These biologically inspired designs are typically of uniform construction along their flagellar axis. This work demonstrates for the first time planar undulations of composite multilink nanowire-based chains (diameter 200 nm) induced by a planar-oscillating magnetic field. Those chains comprise an elastic eukaryote-like polypyrrole tail and rigid magnetic nickel links connected by flexible polymer bilayer hinges. The multilink design exhibits a high swimming efficiency. Furthermore, the manufacturing process enables tuning the geometrical and material properties to specific applications.Entities:
Keywords: 1-, 2-, and 3-Link nanoswimmers; nanowires; planar oscillating magnetic field; undulatory locomotion
Year: 2015 PMID: 26029795 DOI: 10.1021/acs.nanolett.5b01981
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189