| Literature DB >> 30960482 |
Kwanwoo Song1, Jinwook Lee2,3, Seong-O Choi4,5, Jooyoun Kim6,7.
Abstract
With various options of anti-wetting finish methods, this study intends to provide basic information that can be applied in selecting a relevant anti-wetting chemical to grant protection from spreading of liquids with different surface energy profiles. With such an aim, the anti-wetting effectiveness of fluorinated coating and silane coating was investigated for liquids having different surface energy components, water (WA), methylene iodide (MI) and formamide (FA). The wetting thermodynamics was experimentally investigated by analyzing dispersive and polar component surface energies of solids and liquids. The role of surface roughness in wettability was examined for fibrous nonwoven substrates that have varied surface roughness. The presence of roughness enhanced the anti-wetting performance of the anti-wetting treated surfaces. While the effectiveness of different anti-wetting treatments was varied depending on the liquid polarities, the distinction of different treatments was less apparent for the roughened fibrous surfaces than the film surfaces. This study provides experimental validation of wetting thermodynamics and the practical interpretation of anti-wetting finishing.Entities:
Keywords: anti-wetting; contact angle; dispersive; etching; nonwoven; polar; roughness; surface energy; thermodynamics
Year: 2019 PMID: 30960482 PMCID: PMC6473839 DOI: 10.3390/polym11030498
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Film and nonwoven substrates used.
| Substrate | Polymer | Process | Thickness (mm) | Basis Weight (g/m2) |
|---|---|---|---|---|
| Film | Cellulose | Casting | 0.3 | 45 |
| PP | Casting | 0.3 | 42 | |
| PET | Casting | 0.4 | 22 | |
| Nonwoven | Cellulose | Spunlace | 2.0 | 26 |
| PET | Spunbond | 1.4 | 20 |
Description of specimens.
| Specimen Code | Polymer | Substrate | Etching | Chemical Treatment |
|---|---|---|---|---|
| Cel | Cellulose | Flat film | None | None |
| Cel-f | C4F8 plasma, f | |||
| Cel-Si | DTMS deposition, Si | |||
| PP | PP | None | ||
| PET | PET | None | ||
| PET-f | C4F8 plasma, f | |||
| PET-Si | DTMS deposition, Si | |||
| Cel(SL) | Cellulose | Spunlace (SL) nonwoven | None | |
| Cel(SL)-f | C4F8 plasma, f | |||
| Cel(SL)-Si | DTMS deposition, Si | |||
| PET(SB) | PET | Spunbond (SB) nonwoven | None | |
| PET(SB)-f | C4F8 plasma, f | |||
| PET(SB)-Si | DTMS deposition, Si | |||
| PET(SB-etch) | PET | Alkali etching | None | |
| PET(SB-etch)-f | C4F8 plasma, f | |||
| PET(SB-etch)-Si | DTMS deposition, Si |
Reference values of surface energy components of liquids [49].
| Liquid | PL (Polar Ratio) | |||
|---|---|---|---|---|
| Water (WA) | 72.8 | 21.8 | 51.0 | 0.70 |
| Formamide (FA) | 58.4 | 31.4 | 27.0 | 0.46 |
| Methylene iodide (MI) | 50.8 | 50.4 | 0.40 | 0.008 |
Note: , overall surface energy of liquid; , dispersive component surface energy of liquid; , polar component surface energy of liquid; PL, ratio of the polar component to the overall surface energy of liquid.
Contact angle of water and methylene iodide, and the estimated surface energy.
| Specimen | Contact Angle (˚) | Surface Energy (mN/m) | Polar Ratio (PS) | |||
|---|---|---|---|---|---|---|
| WA | MI | γ | γd | γp | ||
| Cel | 0 | 50 | 73.4 | 28.0 | 45.4 | 0.628 |
| Cel-f | 107 | 94 | 12.5 | 10.2 | 2.3 | 0.184 |
| Cel-Si | 101 | 60 | 28.6 | 28.2 | 0.42 | 0.015 |
| PP | 105 | 63 | 26.9 | 26.7 | 0.16 | 0.006 |
| PET | 96 | 61 | 28.5 | 27.2 | 1.34 | 0.047 |
| PET-f | 106 | 95 | 12.5 | 9.75 | 2.73 | 0.219 |
| PET-Si | 104 | 61 | 28.0 | 27.8 | 0.17 | 0.006 |
Figure 1Surface energy components of solid surfaces.
XPS atomic concentration (%) of surfaces.
| Specimen | C (%) | O (%) | F (%) | Si (%) |
|---|---|---|---|---|
| PP | 97.8 | 2.2 | - | - |
| Cel | 77.1 | 22.9 | - | - |
| Cel-f | 52.0 | 30.9 | 17.2 | |
| Cel-Si | 51.2 | 27.3 | - | 21.6 |
| PET | 91.9 | 2.2 | - | - |
| PET-f | 49.2 | 7.3 | 43.5 | - |
| PET-Si | 67.8 | 23.3 | - | 8.8 |
Figure 2Wettability with different surface energy surfaces. (a) cosθ with different Φ; (b) cosθ with different .
Figure 3Surface polarity influencing wetting. (a) Percentage of the polar contribution to the overall surface energy of solids; (b) Interfacial function with % polarity.
Figure 4Contact angle of formamide (FA), actual measurement and estimation from Equation (10).
Figure 5Spreading parameter for surface energy and wettability. (a) Plots of cosθ with spreading parameter; (b) Spreading parameter with different surface energy of the solid.
Figure 6Scanning electron microscopy (SEM) images of surfaces. Inserts are optical microscope images with the scale bar of 1 mm.
Figure 7Surface roughness observed by atomic force microscopy (AFM). (a) Polyethylene terephthalate (PET) film; (b) PET spunbond fabric; (c) alkali-etched PET spunbond fabric.
Contact and shedding angles of surfaces.
| CA (°) | ShA (°) | |||||||
|---|---|---|---|---|---|---|---|---|
| Specimen | WA | FA | MI | WA | ||||
| Cel | 0 | (±0.0) | 0 | (±0.0) | 50 | (±0.8) | >50 | (±0.0) |
| Cel-f | 107 | (±1.9) | 105 | (±1.6) | 94 | (±3.0) | >50 | (±0.0) |
| Cel-Si | 101 | (±1.4) | 84 | (±2.8) | 60 | (±1.3) | >50 | (±0.0) |
| PP | 105 | (±3.7) | 88 | (±2.3) | 63 | (±2.3) | >50 | (±0.0) |
| PET | 96 | (±4.2) | 82 | (±1.9) | 61 | (±1.7) | >50 | (±0.0) |
| PET-f | 106 | (±1.2) | 102 | (±2.6) | 95 | (±2.7) | >50 | (±0.0) |
| PET-Si | 104 | (±2.3) | 90 | (±2.8) | 61 | (±1.9) | >50 | (±0.0) |
| Cel(SL) | 0 | (±0.0) | 0 | (±0.0) | 0 | (±0.0) | >50 | (±0.0) |
| Cel(SL)-f | 166 | (±2.3) | 159 | (±2.5) | 153 | (±3.4) | 12.8 | (±0.8) |
| Cel(SL)-Si | 164 | (±4.1) | 152 | (±2.3) | 148 | (±4.3) | 8.8 | (±0.8) |
| PET(SB) | 126 | (±2.8) | 84 | (±4.5) | 0 | (±0.0) | >50 | (±0.0) |
| PET(SB)-f | 147 | (±2.9) | 143 | (±2.7) | 140 | (±3.7) | 15.8 | (±0.8) |
| PET(SB)-Si | 145 | (±3.8) | 136 | (±1.7) | 127 | (±2.5) | >50 | (±0.0) |
| PET(SB-etch) | 129 | (±3.5) | 0 | (±0.0) | 0 | (±0.0) | >50 | (±0.0) |
| PET(SB-etch)-f | 156 | (±2.9) | 150 | (±1.4) | 150 | (±2.4) | 5.6 | (±0.5) |
| PET(SB-etch)-Si | 151 | (±3.3) | 145 | (±3.2) | 140 | (±3.7) | 7.0 | (±0.6) |
Note: shedding angle higher than 50° was not measured any further.
Figure 8Wettability of substrates with different surface energy and roughness profiles.