| Literature DB >> 35591445 |
Samih Haj Ibrahim1,2, Tomasz Wejrzanowski1,2, Bartłomiej Przybyszewski1,2, Rafał Kozera1,2, Xabier García-Casas3, Angel Barranco3.
Abstract
Within these studies, the effect of surface topography for hydrophobic coatings was studied both numerically and experimentally. Chemically modified polyurethane coating was patterned by application of a laser beam. A set of patterns with variously distant linear peaks and grooves was obtained. The cross section of the pattern showed that the edges of the peaks and grooves were not sharp, instead forming a rounded, rectangle-like shape. For such surfaces, experimental studies were performed, and in particular the static contact angle (SCA), contact angle hysteresis (CAH), and roll-off angle (ROA) were measured. Profilometry was used to create a numerical representation of the surface. Finite volume method was then applied to simulate the behavior of the water droplets. The model developed herewith enabled us to reproduce the experimental results with good accuracy. Based on the verified model, the calculation was extended to study the behavior of the water droplet on the simulated patterns, both spiked and rectangular. These two cases, despite a similar SCA of the water droplet, have shown extremely different ROA. Thus, more detailed studies were dedicated to other geometrical features of such topography, such as the size and distance of the surface elements. Based on the results obtained herewith, the future design of superhydrophobic and/or icephobic topography is discussed.Entities:
Keywords: roll-off angle; superhydrophobic surfaces; wettability
Year: 2022 PMID: 35591445 PMCID: PMC9104868 DOI: 10.3390/ma15093112
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.748
Figure 1SEM images of modified polyurethane coatings after laser patterning: (a,c) sample ‘5by5’, (b,d) sample ‘20by20’.
Figure 2Example of the generated mesh for further calculations.
Figure 3Volume fraction of fluid (red—water, blue—air) presenting: (a) Initial droplet configuration and (b) droplet after stabilization.
Figure 4Measurement of contact angle: (a) initial volume fraction image (red—water, blue—air), (b) grayscale volume fraction image (black—water, white—air), and (c) contact angle measured with drop analysis plugin.
Wettability parameters of polyurethane coatings after laser patterning.
| Sample | SCA | CAH | RoA |
|---|---|---|---|
| Reference PUR | 85 | 39 | 87 |
| Modified PUR | 107 | 35 | 80 |
| 5by5 | 114 | 18 | 90 |
| 10by5 | 119 | 20 | 45 |
| 20by5 | 115 | 25 | 90 |
| 5by10 | 118 | 23 | 40 |
| 10by10 | 121 | 26 | 90 |
| 20by20 | 136 | 5 | 5 |
| 5by20 | 133 | 24 | 40 |
| 10by20 | 131 | 18 | 35 |
| 20by10 | 115 | 27 | 70 |
Comparison of modeling and experimental results of roll-off angles for different samples.
| Sample | Experiment | Model | Model (140° Surface Contact Angle) | Model Miwa et al. [ | ||||
|---|---|---|---|---|---|---|---|---|
| Apparent Contact Angle [°] | Roll-off-Angle [°] | Apparent Contact Angle [°] | Roll-off-Angle [°] | Apparent Contact Angle [°] | Roll-off -Angle [°] | 107 CA [°] | 140 CA [°] | |
| 5by5 | 114 | >90 | 107 | >90 | 113 | >90 | - | - |
| 10by10 | 121 | >90 | 116 | >90 | 122 | >90 | - | - |
| 20by20 | 136 | 5 | 132 | 30 | 138 | 10 | 66 | 27 |
Figure 5Volume fraction of the fluid in the grooves: blue—water and red—air. Visible air pockets trapped in the grooves.
Surface patterns for modeling studies and results of ROA and ACA.
| Surface Pattern | Roll-Off Angle [°] | Apparent Contact Angle [°] | |
|---|---|---|---|
|
| Rectangle | >90 | 128 |
|
| Rounded rectangle | >90 | 133 |
|
| Circles | >90 | 130 |
|
| Spikes | 10 | 167 |
|
| Rounded spikes | 35 | 166 |
Figure 6Volume fraction of the fluid in the grooves: blue—air and red—water. (a) Water phase does not reach the next bulge on circular pattern, (b) Water-air interface with the spiked pattern.
Results of simulation of droplet sliding on surfaces with rectangular pattern.
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| 5_5 | >90 | 145 | |
| 10_5 | >90 | 146 | |
| 15_5 | >90 | 147 | |
| 20_5 | >90 | 149 |
Results of simulation of droplet sliding on surfaces with spiked pattern.
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| 5_12 | 15 | 172 | |
| 10_12 | 10 | 169 | |
| 15_12 | 10 | 175 | |
| 20_12 | 5 | 170 |