Literature DB >> 27600373

Magnetically Propelled Fish-Like Nanoswimmers.

Tianlong Li1,2, Jinxing Li2, Hongtao Zhang1, Xiaocong Chang1, Wenping Song1, Yanan Hu1, Guangbin Shao1, Elodie Sandraz2, Guangyu Zhang1, Longqiu Li1, Joseph Wang2.   

Abstract

The swimming locomotion of fish involves a complex interplay between a deformable body and induced flow in the surrounding fluid. While innovative robotic devices, inspired by physicomechanical designs evolved in fish, have been created for underwater propulsion of large swimmers, scaling such powerful locomotion into micro-/nanoscale propulsion remains challenging. Here, a magnetically propelled fish-like artificial nanoswimmer is demonstrated that emulates the body and caudal fin propulsion swimming mechanism displayed by fish. To mimic the deformable fish body for periodic shape changes, template-electrosynthesized multisegment nanowire swimmers are used to construct the artificial nanofishes (diameter 200 nm; length 4.8 μm). The resulting nanofish consists a gold segment as the head, two nickel segments as the body, and one gold segment as the caudal fin, with three flexible porous silver hinges linking each segment. Under an oscillating magnetic field, the propulsive nickel elements bend the body and caudal fin periodically to generate travelling-wave motions with speeds exceeding 30 μm s-1 . The propulsion dynamics is studied theoretically using the immersed boundary method. Such body-deformable nanofishes exhibit a high swimming efficiency and can serve as promising biomimetic nanorobotic devices for nanoscale biomedical applications.
© 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  body and caudal fin; fish-like; magnetic propulsion; nanorobots; nanoswimmers

Mesh:

Year:  2016        PMID: 27600373     DOI: 10.1002/smll.201601846

Source DB:  PubMed          Journal:  Small        ISSN: 1613-6810            Impact factor:   13.281


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