The synchronization of superparamagnetic beads driven by a micro-magnetic ratchet
Author(s) -
Lu Gao,
Norman J. Gottron,
Lawrence N. Virgin,
Benjamin B. Yellen
Publication year - 2010
Publication title -
lab on a chip
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.064
H-Index - 210
eISSN - 1473-0197
pISSN - 1473-0189
DOI - 10.1039/c003836a
Subject(s) - bead , ratchet , superparamagnetism , magnet , magnetic bead , harmonic , materials science , synchronization (alternating current) , phase (matter) , magnetic field , nanotechnology , range (aeronautics) , biological system , forcing (mathematics) , mechanics , physics , chaotic , topology (electrical circuits) , computer science , chemistry , engineering , magnetization , chromatography , acoustics , quantum mechanics , artificial intelligence , electrical engineering , composite material , biology , atmospheric sciences
We present theoretical, numerical, and experimental analyses on the non-linear dynamic behavior of superparamagnetic beads exposed to a periodic array of micro-magnets and an external rotating field. The agreement between theoretical and experimental results revealed that non-linear magnetic forcing dynamics are responsible for transitions between phase-locked orbits, sub-harmonic orbits, and closed orbits, representing different mobility regimes of colloidal beads. These results suggest that the non-linear behavior can be exploited to construct a novel colloidal separation device that can achieve effectively infinite separation resolution for different types of beads, by exploiting minor differences in their bead's properties. We also identify a unique set of initial conditions, which we denote the "devil's gate" which can be used to expeditiously identify the full range of mobility for a given bead type.
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