English

Colloidal particle adsorption at water/water interfaces with ultra-low interfacial tension

Soft Condensed Matter 2018-05-23 v2

Abstract

Using fluorescence microscopy we study the adsorption of single latex microparticles at a water/water interface between demixing aqueous solutions of polymers, generally known as a water-in-water emulsion. Similar microparticles at the interface between molecular liquids have exhibited an extremely slow relaxation preventing the observation of expected equilibrium states. This phenomenon has been attributed to "long-lived" metastable states caused by significant energy barriers ΔFγAdkBT\Delta{\cal F}\sim \gamma A_d\gg k_B T induced by high interfacial tension (γ102\gamma \sim 10^{-2} N/m) and nanoscale surface defects with characteristic areas AdA_d \simeq 10--30 nm2^2. For the studied water/water interface with ultra-low surface tension (γ104\gamma \sim 10^{-4} N/m) we are able to characterize the entire adsorption process and observe equilibrium states prescribed by a single equilibrium contact angle independent of the particle size. Notably, we observe crossovers from fast initial dynamics to slower kinetic regimes analytically predicted for large surface defects (AdA_d \simeq 500 nm2^2). Moreover, particle trajectories reveal a position-independent damping coefficient that is unexpected given the large viscosity contrast between phases. These observations are attributed to the remarkably diffuse nature of the water/water interface and the adsorption and entanglement of polymer chains in the semidilute solutions. This work offers some first insights on the adsorption dynamics/kinetics of microparticles at water/water interfaces in bio-colloidal systems.

Keywords

Cite

@article{arxiv.1711.10024,
  title  = {Colloidal particle adsorption at water/water interfaces with ultra-low interfacial tension},
  author = {Louis Keal and Carlos E. Colosqui and Hans Tromp and Cecile Monteux},
  journal= {arXiv preprint arXiv:1711.10024},
  year   = {2018}
}

Comments

Supplemental Material includes analysis of damping coefficients and experimental measurements of polymer adsorption on latex particles