Technical design features for improving the way a passive elastic filament produces propulsive thrust can be understood by analyzing the deformation of sperm-templated microrobots with segmented magnetization. Magnetic nanoparticles are electrostatically self-assembled on bovine sperm cells with nonuniform surface charge, producing different categories of sperm-templated microrobots. Depending on the amount and location of the nanoparticles on each cellular segment, magnetoelastic and viscous forces determine the wave pattern of each category during flagellar motion. Passively propagating waves are induced along the length of these microrobots using external rotating magnetic fields and the resultant wave patterns are measured. The response...
Abstract Sperm cells can move at a high speed in biofluids based on the flexible flagella, which ins...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
With the advent of small-scale robotics, several exciting new applications like Targeted Drug Delive...
Technical design features for improving the way a passive elastic filament produces propulsive thrus...
Technical design features for improving the way a passive elastic filament produces propulsive thrus...
Several microorganisms swim by a beating flagellum more rapidly in solutions with gel-like structure...
The active flagellum propels a motile sperm cell by traveling bending waves. Here, we demonstrate th...
Spermbots are biohybrid micromachines consisting of single sperm cells captured in artificial magnet...
Spermatozoa are efficient microswimmers which perform a bending wave motion for their forward propul...
We develop biohybrid magnetic microrobots by electrostatic self-assembly of nonmotile sperm cells an...
We develop biohybrid magnetic microrobots by electrostatic self-assembly of nonmotile sperm cells an...
Sperm-driven micromotors, consisting of a single sperm cell captured in a microcap, utilize the stro...
Abstract Sperm cells can move at a high speed in biofluids based on the flexible flagella, which ins...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
With the advent of small-scale robotics, several exciting new applications like Targeted Drug Delive...
Technical design features for improving the way a passive elastic filament produces propulsive thrus...
Technical design features for improving the way a passive elastic filament produces propulsive thrus...
Several microorganisms swim by a beating flagellum more rapidly in solutions with gel-like structure...
The active flagellum propels a motile sperm cell by traveling bending waves. Here, we demonstrate th...
Spermbots are biohybrid micromachines consisting of single sperm cells captured in artificial magnet...
Spermatozoa are efficient microswimmers which perform a bending wave motion for their forward propul...
We develop biohybrid magnetic microrobots by electrostatic self-assembly of nonmotile sperm cells an...
We develop biohybrid magnetic microrobots by electrostatic self-assembly of nonmotile sperm cells an...
Sperm-driven micromotors, consisting of a single sperm cell captured in a microcap, utilize the stro...
Abstract Sperm cells can move at a high speed in biofluids based on the flexible flagella, which ins...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
With the advent of small-scale robotics, several exciting new applications like Targeted Drug Delive...