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Flow profiles near receding three-phase contact lines: influence of surfactants

The dynamics of wetting and dewetting is largely determined by the velocity field near the contact lines. For water drops it has been observed that adding surfactant decreases the dynamic receding contact angle even at a concentration much lower than the critical micelle concentration (CMC). To bett...

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Autores principales: Straub, Benedikt B., Schmidt, Henrik, Rostami, Peyman, Henrich, Franziska, Rossi, Massimiliano, Kähler, Christian J., Butt, Hans-Jürgen, Auernhammer, Günter K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8597584/
https://www.ncbi.nlm.nih.gov/pubmed/34714897
http://dx.doi.org/10.1039/d1sm01145f
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author Straub, Benedikt B.
Schmidt, Henrik
Rostami, Peyman
Henrich, Franziska
Rossi, Massimiliano
Kähler, Christian J.
Butt, Hans-Jürgen
Auernhammer, Günter K.
author_facet Straub, Benedikt B.
Schmidt, Henrik
Rostami, Peyman
Henrich, Franziska
Rossi, Massimiliano
Kähler, Christian J.
Butt, Hans-Jürgen
Auernhammer, Günter K.
author_sort Straub, Benedikt B.
collection PubMed
description The dynamics of wetting and dewetting is largely determined by the velocity field near the contact lines. For water drops it has been observed that adding surfactant decreases the dynamic receding contact angle even at a concentration much lower than the critical micelle concentration (CMC). To better understand why surfactants have such a drastic effect on drop dynamics, we constructed a dedicated setup on an inverted microscope, in which an aqueous drop is held stationary while the transparent substrate is moved horizontally. Using astigmatism particle tracking velocimetry, we track the 3D displacement of the tracer particles in the flow. We study how surfactants alter the flow dynamics near the receding contact line of a moving drop for capillary numbers in the order of 10(−6). Even for surfactant concentrations c far below the critical micelle concentration (c ≪ CMC) Marangoni stresses change the flow drastically. We discuss our results first in a 2D model that considers advective and diffusive surfactant transport and deduce estimates of the magnitude and scaling of the Marangoni stress from this. Modeling and experiment agree that a tiny gradient in surface tension of a few μN m(−1) is enough to alter the flow profile significantly. The variation of the Marangoni stress with the distance from the contact line suggests that the 2D advection–diffusion model has to be extended to a full 3D model. The effect is ubiquitous, since surfactant is present in many technical and natural dewetting processes either deliberately or as contamination.
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spelling pubmed-85975842021-11-23 Flow profiles near receding three-phase contact lines: influence of surfactants Straub, Benedikt B. Schmidt, Henrik Rostami, Peyman Henrich, Franziska Rossi, Massimiliano Kähler, Christian J. Butt, Hans-Jürgen Auernhammer, Günter K. Soft Matter Chemistry The dynamics of wetting and dewetting is largely determined by the velocity field near the contact lines. For water drops it has been observed that adding surfactant decreases the dynamic receding contact angle even at a concentration much lower than the critical micelle concentration (CMC). To better understand why surfactants have such a drastic effect on drop dynamics, we constructed a dedicated setup on an inverted microscope, in which an aqueous drop is held stationary while the transparent substrate is moved horizontally. Using astigmatism particle tracking velocimetry, we track the 3D displacement of the tracer particles in the flow. We study how surfactants alter the flow dynamics near the receding contact line of a moving drop for capillary numbers in the order of 10(−6). Even for surfactant concentrations c far below the critical micelle concentration (c ≪ CMC) Marangoni stresses change the flow drastically. We discuss our results first in a 2D model that considers advective and diffusive surfactant transport and deduce estimates of the magnitude and scaling of the Marangoni stress from this. Modeling and experiment agree that a tiny gradient in surface tension of a few μN m(−1) is enough to alter the flow profile significantly. The variation of the Marangoni stress with the distance from the contact line suggests that the 2D advection–diffusion model has to be extended to a full 3D model. The effect is ubiquitous, since surfactant is present in many technical and natural dewetting processes either deliberately or as contamination. The Royal Society of Chemistry 2021-10-25 /pmc/articles/PMC8597584/ /pubmed/34714897 http://dx.doi.org/10.1039/d1sm01145f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Straub, Benedikt B.
Schmidt, Henrik
Rostami, Peyman
Henrich, Franziska
Rossi, Massimiliano
Kähler, Christian J.
Butt, Hans-Jürgen
Auernhammer, Günter K.
Flow profiles near receding three-phase contact lines: influence of surfactants
title Flow profiles near receding three-phase contact lines: influence of surfactants
title_full Flow profiles near receding three-phase contact lines: influence of surfactants
title_fullStr Flow profiles near receding three-phase contact lines: influence of surfactants
title_full_unstemmed Flow profiles near receding three-phase contact lines: influence of surfactants
title_short Flow profiles near receding three-phase contact lines: influence of surfactants
title_sort flow profiles near receding three-phase contact lines: influence of surfactants
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8597584/
https://www.ncbi.nlm.nih.gov/pubmed/34714897
http://dx.doi.org/10.1039/d1sm01145f
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