Regulating Brownian Fluctuations with Tunable Microscopic Magnetic Traps
A. Chen, G. Vieira, Thomas Henighan, Marci Howdyshell, Justin A. North, Adam J. Hauser, Fengyuan Yang, Michael G. Poirier, C. Jayaprakash, R. Sooryakumar
Abstract
A. Chen, G. Vieira, Thomas Henighan, Marci Howdyshell, Justin A. North, Adam J. Hauser, Fengyuan Yang, Michael G. Poirier, C. Jayaprakash, R. Sooryakumar
Abstract
A major challenge to achieving positional control of fluid borne submicron sized objects is regulating their Brownian fluctuations. We present a magnetic-field-based trap that regulates the thermal fluctuations of superparamagnetic beads in suspension. Local domain-wall fields originating from patterned magnetic wires, whose strength and profile are tuned by weak external fields, enable the bead trajectories within the trap to be managed and easily varied between strong confinements and delocalized spatial excursions that are described remarkably well by simulations.
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A major challenge to achieving positional control of fluid borne submicron sized objects is regulating their Brownian fluctuations. We present a magnetic-field-based trap that regulates the thermal fluctuations of superparamagnetic beads in suspension. Local domain-wall fields originating from patterned magnetic wires, whose strength and profile are tuned by weak external fields, enable the bead trajectories within the trap to be managed and easily varied between strong confinements and delocalized spatial excursions that are described remarkably well by simulations.
Key concepts: Trap (plumbing), Brownian motion, Superparamagnetism, Thermal fluctuations, Delocalized electron, Magnetic field, Brownian dynamics, Suspension (topology)