Long wavelength undulations dominate dynamics in large surfactant membrane patches
Author(s) -
Frederik Lipfert,
Olaf Holderer,
Henrich Frielinghaus,
MarieSousai Appavou,
Changwoo Do,
Michael Ohl,
Dieter Richter
Publication year - 2014
Publication title -
nanoscale
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.038
H-Index - 224
eISSN - 2040-3372
pISSN - 2040-3364
DOI - 10.1039/c4nr06278g
Subject(s) - microemulsion , membrane , neutron scattering , lamellar structure , materials science , wavelength , pulmonary surfactant , dispersion (optics) , neutron spin echo , lamellar phase , decane , chemical physics , scattering , small angle neutron scattering , phase (matter) , chemistry , optics , physics , composite material , thermodynamics , biochemistry , optoelectronics , organic chemistry
By exposing microemulsions to small (80 nm diameter) and large (500 nm) disk shaped clay particles we were able to show the presence of long wavelength undulations that only occur for large membrane patches. A combination of small angle neutron scattering (SANS) and neutron spin echo (NSE) experiments have been applied to study microemulsions. These, consisting of D2O, d-decane and the surfactant C10E4, were used in connection with Laponite (small) and Nanofil (large) clay. To our knowledge our experiments show for the first time that the clay platelets induce lamellar ordering adjacent to the clay discs in the otherwise bicontinuous microemulsion. This is due to the fact that in purely structural investigations, radial averaging smears out the signature of the lamellar phase. For thermodynamically fluctuating membranes near interfaces the theory of Seifert predicts a cross-over of the dispersion relationship from k(2) to a k(3)-dependence. With the correlation length of the membrane patches being confined by the dimension of the clay platelets we were able to show that this in fact takes place but is only present for the larger Nanofil particles.
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