4.6 Article

Surfactant Adsorption to Different Fluid Interfaces

Journal

LANGMUIR
Volume 37, Issue 22, Pages 6722-6727

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.1c00668

Keywords

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Funding

  1. Swiss National Science Foundation [200021-175994]
  2. Swiss National Science Foundation (SNF) [200021_175994] Funding Source: Swiss National Science Foundation (SNF)

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This study reveals the impact of the hydrophobic phase and oil polarity on surfactant adsorption at fluid interfaces. The higher interfacial competition of surfactants and polar oil molecules results in a decrease in the number of adsorbed molecules at the interface, and the nature of the oil affects the adsorption behavior of surfactants at interfaces.
Surfactant adsorption to fluid interfaces is ubiquitous in biological systems, industrial applications, and scientific fields. Herein, we unravel the impact of the hydrophobic phase (air and oil) and the role of oil polarity on the adsorption of surfactants to fluid interfaces. We investigated the adsorption of anionic (sodium dodecyl sulfate), cationic (dodecyltrimethylammonium bromide), and non-ionic (polyoxyethylene-(23)-monododecyl ether) surfactants at different interfaces, including air and oils, with a wide range of polarities. The surfactant-induced interfacial tension decrease, called the interfacial pressure, correlates linearly with the initial interfacial tension of the clean oil-water interface and describes the experimental results of over 30 studies from the literature. The higher interfacial competition of surfactant and polar oil molecules caused the number of adsorbed molecules at the interface to drop. Further, we found that the critical micelle concentration of surfactants in water correlates to the solubility of the oil molecules in water. Hence, the nature of the oil affects the adsorption behavior and equilibrium state of the surfactant at fluid interfaces. These results broaden our understanding and enable better predictability of the interactions of surfactants with hydrophobic phases, which is essential for emulsion, foam, and capsule formation, pharmaceutical commodities, cosmetics, and many food products.

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