Publication: Amphibious Transport of Fluids and Solids by Soft Magnetic Carpets
Loading...
Date
Advisor
Department
Journal Title
Journal ISSN
Volume Title
Publisher
Wiley
Type
Abstract
AbstractOne of the major challenges in modern robotics is controlling micromanipulation by active and adaptive materials. In the respiratory system, such actuation enables pathogen clearance by means of motile cilia. While various types of artificial cilia have been engineered recently, they often involve complex manufacturing protocols and focus on transporting liquids only. Here, soft magnetic carpets are created via an easy self‐assembly route based on the Rosensweig instability. These carpets can transport not only liquids but also solid objects that are larger and heavier than the artificial cilia, using a crowd‐surfing effect.This amphibious transportation is locally and reconfigurably tunable by simple micromagnets or advanced programmable magnetic fields with a high degree of spatial resolution. Two surprising cargo reversal effects are identified and modeled due to collective ciliary motion and nontrivial elastohydrodynamics. While the active carpets are generally applicable to integrated control systems for transport, mixing, and sorting, these effects can also be exploited for microfluidic viscosimetry and elastometry.
Description
Journal or Series
Advanced Science
ISSN
2198-3844
ISBN
Rights
OPEN
Keywords
General Chemical Engineering, Science, Medicine (miscellaneous), General Physics and Astronomy, FOS: Physical sciences, fluid dynamics, Applied Physics (physics.app-ph), magnetic fields, artificial cilia, Biochemistry, Genetics and Molecular Biology (miscellaneous), Magnetics, artificial cilia, fluid dynamics, magnetic fields, self assembly, soft robots, General Materials Science, Cilia, Research Articles, Condensed Matter - Materials Science, Viscosity, General Engineering, soft robots, Fluid Dynamics (physics.flu-dyn), Materials Science (cond-mat.mtrl-sci), Physics - Applied Physics, Physics - Fluid Dynamics, Robotics, self assembly, Elasticity, Magnetic Fields, Hydrodynamics, Artificial Organs