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On the interpretation of transport properties of sodium cholate and sodium deoxycholate in binary and ternary aqueous mixtures

Year: 2011

Journal: Physical Chemistry Chemical Physics 2011, 13 (35) pp 15906-15917, 20121211

Authors: Gaetano Mangiapia , Gerardino D'Errico , Fabio Capuano , Ornella Ortona , Richard K. Heenan , Luigi Paduano and Roberto Sartorio

Organizations: CSGI-Consorzio interuniversitario per lo sviluppo dei Sistemi a Grande Interfase ans Universita degli Studi di Napoli Federico il, Dipartimento di Chimica, via Cinthia, 80126 Napoli, Italy; Instituto Technico Statele S. Caterina da Siena via Loria Virenzon 1, 84129 Salermo, Italy; ISIS-CLRC, Rutherford Appleton Laboratory, Chilton, Oxon, UK

Sodium cholate (NaC) and sodium deoxycholate (NaDC) in binary and ternary aqueous mixtures were investigated by means of surface tension, electron paramagnetic resonance spectroscopy (EPR), small angle neutron scattering (SANS) and mutual diffusion coefficient analysis. Concerning the NaC–H2O and NaDC–H2O binary mixtures, the surface tension, EPR and diffusion measurements confirmed the formation of micelles above a well detectable critical concentration. The SANS data indicated for both systems, the formation of ellipsoidal micelles whose major axis increased with concentration and minor axis remained constant. The data were interpreted under the assumption that aggregate growth occurred via hydrogen bonding of small aggregates along one preferential direction. For the NaC–NaDC–H2O ternary mixtures, the surface tension and EPR results were in good agreement with the Clint model prediction for the ideal mixed micellization. Based on this model, the SANS data enabled a complete description of the mixed aggregates in terms of dimensions, composition and concentration. In turn, this strategy allowed for a satisfactory interpretation of the main and cross-term diffusion coefficient trends, which are quite complex.