» Articles » PMID: 39659768

Magnetic Control of Soft Microrobots Near Step-out Frequency: Characterization and Analysis

Overview
Specialty Biotechnology
Date 2024 Dec 11
PMID 39659768
Authors
Affiliations
Soon will be listed here.
Abstract

Magnetically actuated soft microrobots hold promise for biomedical applications that necessitate precise control and adaptability in complex environments. These microrobots can be accurately steered below their step-out frequencies where they exhibit synchronized motion with external magnetic fields. However, the step-out frequencies of soft microrobots have not been investigated yet, as opposed to their rigid counterparts. In this work, we develop an analytic model from the magneto-elastohydrodynamics to establish the relationship between the step-out frequency of soft sperm-like microrobots and their magnetic properties, geometry, wave patterns, and the viscosity of the surrounding medium. We fabricate soft sperm-like microrobots using electrospinning and assess their swimming abilities in mediums with varying viscosities under an oscillating magnetic field. We observe slight variations in wave patterns of the sperm-like microrobots as the actuation frequency changes. Our theoretical model, which analyzes these wave patterns observed without exceeding the step-out threshold, quantitatively agrees with the experimentally measured step-out frequencies. By accurately predicting the step-out frequency, the proposed model lays a foundation for achieving precise control over individual soft microrobots and enabling selective control within a swarm when executing biomedical tasks.

References
1.
Lauga E . Floppy swimming: viscous locomotion of actuated elastica. Phys Rev E Stat Nonlin Soft Matter Phys. 2007; 75(4 Pt 1):041916. DOI: 10.1103/PhysRevE.75.041916. View

2.
Robinson A, Perez-Nava A, Ali S, Gonzalez-Campos J, Holloway J, Cosgriff-Hernandez E . Comparative Analysis of Fiber Alignment Methods in Electrospinning. Matter. 2022; 4(3):821-844. PMC: 9222234. DOI: 10.1016/j.matt.2020.12.022. View

3.
Tang J, Rogowski L, Zhang X, Kim M . Flagellar nanorobot with kinetic behavior investigation and 3D motion. Nanoscale. 2020; 12(22):12154-12164. DOI: 10.1039/d0nr02496a. View

4.
Jiang J, Wang F, Huang W, Sun J, Ye Y, Ou J . Mobile mechanical signal generator for macrophage polarization. Exploration (Beijing). 2023; 3(2):20220147. PMC: 10190931. DOI: 10.1002/EXP.20220147. View

5.
Jikeli J, Alvarez L, Friedrich B, Wilson L, Pascal R, Colin R . Sperm navigation along helical paths in 3D chemoattractant landscapes. Nat Commun. 2015; 6:7985. PMC: 4557273. DOI: 10.1038/ncomms8985. View