Line tension and its influence on droplets and particles at surfaces
File(s)Line tension Prog Surf Sci Submission BMLaw 082016.pdf (1.71 MB)
Accepted version
Author(s)
Type
Journal Article
Abstract
In this review we examine the influence of the line tension τ on droplets and particles at surfaces. The line tension influences the nucleation behavior and contact angle of liquid droplets at both liquid and solid surfaces and alters the attachment energetics of solid particles to liquid surfaces. Many factors, occurring over a wide range of length scales, contribute to the line tension. On atomic scales, atomic rearrangements and reorientations of submolecular components give rise to an atomic line tension contribution τatom (∼1 nN), which depends on the similarity/dissimilarity of the droplet/particle surface composition compared with the surface upon which it resides. At nanometer length scales, an integration over the van der Waals interfacial potential gives rise to a mesoscale contribution |τvdW| ∼ 1–100 pN while, at millimeter length scales, the gravitational potential provides a gravitational contribution τgrav ∼ +1–10 μN. τgrav is always positive, whereas, τvdW can have either sign. Near wetting, for very small contact angle droplets, a negative line tension may give rise to a contact line instability. We examine these and other issues in this review.
Date Issued
2017-02-01
Date Acceptance
2017-01-04
Citation
Progress in Surface Science, 2017, 92 (1), pp.1-39
ISSN
0079-6816
Publisher
Elsevier
Start Page
1
End Page
39
Journal / Book Title
Progress in Surface Science
Volume
92
Issue
1
Copyright Statement
© 2017, Elsevier. Licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International http://creativecommons.org/licenses/by-nc-nd/4.0/
Subjects
Science & Technology
Physical Sciences
Chemistry, Physical
Physics, Condensed Matter
Chemistry
Physics
Line tension
Wettability
Interfacial potential
Surface phase transitions
Contact line instability
3-PHASE CONTACT LINE
1ST-ORDER WETTING TRANSITIONS
THIN LIQUID-FILMS
OIL-WATER INTERFACE
COMPUTER-SIMULATION
SIZE DEPENDENCE
MOLECULAR-DYNAMICS
FLUID PHASES
N-ALKANES
NANOPARTICLE MONOLAYERS
Publication Status
Published