Tunable depletion potentials driven by shape variation of surfactant micelles
Author(s) -
Matthew Gratale,
Tim Still,
Caitlin Matyas,
Zoey S. Davidson,
Samuel Lobel,
Peter J. Collings,
Arjun G. Yodh
Publication year - 2016
Publication title -
physical review. e
Language(s) - English
Resource type - Journals
eISSN - 2470-0053
pISSN - 2470-0045
DOI - 10.1103/physreve.93.050601
Subject(s) - micelle , anisotropy , pulmonary surfactant , colloid , chemical physics , materials science , nanoscopic scale , nanometre , chemical engineering , nanotechnology , chemistry , physics , optics , composite material , aqueous solution , engineering
Depletion interaction potentials between micron-sized colloidal particles are induced by nanometer-scale surfactant micelles composed of hexaethylene glycol monododecyl ether (C_{12}E_{6}), and they are measured by video microscopy. The strength and range of the depletion interaction is revealed to arise from variations in shape anisotropy of the surfactant micelles. This shape anisotropy increases with increasing sample temperature. By fitting the colloidal interaction potentials to theoretical models, we extract micelle length and shape anisotropy as a function of temperature. This work introduces shape anisotropy tuning as a means to control interparticle interactions in colloidal suspensions, and it shows how the interparticle depletion potentials of micron-scale objects can be employed to probe the shape and size of surrounding macromolecules at the nanoscale.
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