Brownian ratchet based on repetitive nanoparticle aggregation and dispersion
ORAL
Abstract
Although several Brownian ratchet methods have been proposed, they are limited to transport of nanoparticles or colloidal particles with sizes beyond hundreds of nanometers. Here, we propose a Brownian ratchet for the unidirectional transport of stimuli-responsive molecules confined in a series of asymmetric geometries. It relies on repetitive cycles of aggregation and dispersion, which cause significant changes in molecular distribution within the confining geometry and enable the Brownian motion of the molecules to be ratcheted in a specific direction. To demonstrate the feasibility of the proposed Brownian ratchet, we conducted Brownian dynamics simulations where stimuli-responsive molecules were repeatedly aggregated and dispersed in a series of truncated conical tubes by altering intermolecular interactions. These simulations demonstrated the unidirectional transport of the molecules, indicating the efficacy of the proposed Brownian ratchet. Furthermore, we found that it becomes more effective with higher concentrations of molecules. This study suggests that, through the deliberate control of molecular assembly and disassembly by stimuli-responsive intermolecular interactions, it is possible to achieve directional and controlled molecular transport in various nanoscale applications.
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Publication: "Design of a Brownian ratchet based on repetitive aggregation and dispersion of stimuli-responsive molecules", doi: 10.1063/5.0190589
Presenters
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Jun Soo Kim
Ewha Womans University
Authors
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Jun Soo Kim
Ewha Womans University
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Gayoung Kim
Ewha Womans University