Net-average curvature model for solubilization and supersolubilization in surfactant microemulsions

被引:156
作者
Acosta, E
Szekeres, E
Sabatini, DA [1 ]
Harwell, JH
机构
[1] Univ Oklahoma, Carson Engn Ctr, Civil Engn & Environm Sci Dept, 202 W Boyd,Room 334, Norman, OK 73019 USA
[2] Univ Oklahoma, Carson Engn Ctr, Coll Engn, Norman, OK 73019 USA
[3] Univ Oklahoma, Dept Mat Sci & Chem Engn, Sarkeys Energy Ctr, Norman, OK 73019 USA
关键词
D O I
10.1021/la026168a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this work, we propose a mathematical model to reproduce the solubilization, equivalent droplet radius, interfacial tension, and phase transitions of anionic surfactant microemulsions by scaling the curvature of the surfactant membranes to the electrolyte concentration required to obtain an optimum microemulsion formulation. At optimum formulation, equal amounts of oil and water are cosolubilized in a bicontinuous media that has a zero net curvature. Our first modeling approach is to use a single curvature term (inverse of an equivalent spherical droplet ratio) which proves to be inadequate as the system transitions to a bicontinuous microemulsion (supersolubilization), where the micelles become swollen and are no longer spherical. Later we introduce two curvature terms (net and average curvature) to interpret bicontinuous microemulsion behavior. The scaling constant (L), which has a length scale, was obtained for sodium dihexyl sulfosuccinate microemulsions with styrene, trichloroethylene, and limonene. This scaling constant (L) is shown to be independent of the oil type, temperature, surfactant, or additive concentration. We use this net-average curvature model to reproduce selected published data. We also compare the scaling constants (L values) for the different microemulsion systems studied, finding that this parameter is proportional to the length of the extended tail of the surfactant and reflects the surfactant solubilization potential. Additionally, the model was modified to account for palisade micellar solubilization. Finally, we introduce the interfacial rigidity concept to reproduce the interfacial tension of these systems.
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收藏
页码:186 / 195
页数:10
相关论文
共 39 条
[1]   The role of hydrophilic linkers [J].
Acosta, E ;
Uchiyama, H ;
Sabatini, DA ;
Harwell, JH .
JOURNAL OF SURFACTANTS AND DETERGENTS, 2002, 5 (02) :151-157
[2]  
Binks B. P., 1998, MODERN ASPECTS EMULS, P1
[3]   THE RULES FOR ACHIEVING HIGH SOLUBILIZATION OF BRINE AND OIL BY AMPHIPHILIC MOLECULES [J].
BOURREL, M ;
CHAMBU, C .
SOCIETY OF PETROLEUM ENGINEERS JOURNAL, 1983, 23 (02) :327-338
[4]  
Bourrel M., 1988, Microemulsions and related systems: formulation, solvency, and physical properties
[5]  
DAVIS HT, 1996, STAT MECH PHASES INT, P712
[6]   POLYMERS AT AN INTERFACE - A SIMPLIFIED VIEW [J].
DEGENNES, PG .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 1987, 27 (3-4) :189-209
[7]   MICRO-EMULSIONS AND THE FLEXIBILITY OF OIL-WATER INTERFACES [J].
DEGENNES, PG ;
TAUPIN, C .
JOURNAL OF PHYSICAL CHEMISTRY, 1982, 86 (13) :2294-2304
[8]   SOLUBILIZATION OF NONAQUEOUS PHASE LIQUID HYDROCARBONS IN MICELLAR SOLUTIONS OF DODECYL ALCOHOL ETHOXYLATES [J].
DIALLO, MS ;
ABRIOLA, LM ;
WEBER, WJ .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1994, 28 (11) :1829-1837
[9]   DYNAMIC LIGHT-SCATTERING FROM CETYLTRIMETHYLAMMONIUM BROMIDE MICELLES - INTERMICELLAR INTERACTIONS AT LOW IONIC STRENGTHS [J].
DORSHOW, R ;
BRIGGS, J ;
BUNTON, CA ;
NICOLI, DF .
JOURNAL OF PHYSICAL CHEMISTRY, 1982, 86 (13) :2388-2395
[10]   Anionic surfactant remediation of soil columns contaminated by nonaqueous phase liquids [J].
Dwarakanath, V ;
Kostarelos, K ;
Pope, GA ;
Shotts, D ;
Wade, WH .
JOURNAL OF CONTAMINANT HYDROLOGY, 1999, 38 (04) :465-488