Spatial dynamics of flexible nano-swimmers under a rotating magnetic field
Zvi Chapnik, Yizhar Or

TL;DR
This paper provides a mathematical analysis of magnetic nano-swimmers' motion, deriving explicit solutions and stability conditions to optimize their performance for biomedical applications.
Contribution
It introduces a simplified two-link model with explicit solutions for synchronous motion and analyzes stability and bifurcations, advancing understanding of nano-swimmer dynamics.
Findings
Explicit analytic solutions for in-plane tumbling and helical swimming.
Identification of stability transitions and bifurcations.
Parametric analysis for optimizing swimmer speed.
Abstract
Micro-nano-robotic swimmers have promising potential for future biomedical tasks such as targeted drug delivery and minimally-invasive diagnosis. An efficient method for controlled actuation of such nano-swimmers is applying a rotating external magnetic field, resulting in helical corkscrew-like locomotion. In previous joint work, we presented fabrication and actuation of a simple magnetic nano-swimmer composed of two nano-rods connected by a short elastic hinge. Experiments under different actuation frequencies result in different motion regimes. At low frequencies, in-plane tumbling; at higher frequencies, moving forward in a spatial helical path in synchrony with the rotating magnetic field; in further frequency increase, asynchronous swimming is obtained. In this work, we present mathematical analysis of this nano-swimmer motion. We consider a simple two-link model and explicitly…
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