Synergistic Effect of Cationic Surfactants on the Rheological Behavior of Erucyl Amidosulfobetaine
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Bahareh Vafakish
Abstract
In recent times, long chain amido sulfobetaine surfactants are a very attractive subject, but their unique self assembly properties as well as the rheological behavior of the mixture of these surfactants with other surfactant types are less documented. In this paper, the rheological behavior of the erucyl amido sulfobetaine (EASB) in mixture with long chain cationic surfactants was evaluated. The results indicated that in spent acid solution, the rheological responses of erucyl amido sulfobetaine (EASB) in the presence of cationic surfactants were improved. The effect of surfactants concentration and temperature were also studied.
Kurzfassung
In jüngster Zeit sind langkettige Amidosulfobetain-Tenside ein sehr attraktives Forschungsfeld, aber ihre einzigartigen Selbstorganisationseigenschaften sowie das rheologische Verhalten von Mischungen dieser Tenside mit anderen Tensidklassen sind weniger dokumentiert. In dieser Arbeit wurde das rheologische Verhalten vom Mischungen aus Erucylamidosulfobetain (EASB) und langkettigen kationischen Tensiden untersucht. Die Ergebnisse zeigten, dass in der verbrauchten Säurelösung die rheologischen Eigenschaften von Erucylamidosulfobetain (EASB) in Gegenwart von kationischen Tensiden verbessert wurden. Der Einfluss der Tensidkonzentration und Temperatur wurde ebenfalls untersucht.
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Articles in the same Issue
- Contents/Inhalt
- Contents
- Detergent/Enzymes
- Lactobacillus brevis Lipase: Purification, Immobilization onto Magnetic Florosil NPs, Characterization and Application as a Detergent Additive
- Study on the Interaction Between Cellulase and Surfactants
- Physical Chemistry
- Study of Ionic Liquid Microemulsions: Ethylammonium Nitrate/TritonX-100/Cyclohexane
- Synergistic Effect of Cationic Surfactants on the Rheological Behavior of Erucyl Amidosulfobetaine
- Microscopic Evidence for the Correlation of Micellar Structures and Counterion Binding Constant for Flexible Nanoparticle Catalyzed Piperidinolysis of PS− in Colloidal System
- Application
- Effect of Surface Modification on the Dispersion, Thermal Stability and Crystallization Properties of PET/CaCO3 Nanocomposites
- Environmental Chemistry
- Inhibition of Calcium Carbonate Scale Using an Environmental Friendly Scale Inhibitor
- Novel Surfactants
- Study on the Properties of Mixed Micelles of Disodium Salt of 3-({2-[(2-Carboxy-ethyl)-dodecanoyl-amino]-ethyl}-dodecanoyl-amino)-propionic Acid in Solution Systems
- Synthesis
- Macrocyclic Schiff Base Metal Complexes Derived from Isatin: Structural Activity Relationship and DFT Calculations
- Quaternary Ammonium Gemini Surfactants Used in Enhanced Oil Recovery: Synthesis, Properties, and Flooding Experiments