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Contact Angles and Hysteresis on Soft Surfaces
1National Institute of Materials and Chemical Research, 1-1 Higashi, Tsukuba, 305, Japan
Journal of Colloid and Interface Science
|December 1, 1996
Summary
Contact angle hysteresis on soft elastomers significantly decreases as substrate stiffness increases. This study shows a dramatic reduction in hysteresis with higher bulk tensile modulus, impacting wetting behavior.
Area of Science:
- Materials Science
- Surface Science
- Polymer Science
Background:
- Wetting phenomena are influenced by substrate properties.
- Understanding contact angle hysteresis is crucial for applications involving liquid-substrate interactions.
- Soft materials exhibit unique wetting behaviors due to their deformability.
Purpose of the Study:
- To investigate the relationship between the mechanical properties of soft substrates and contact angle hysteresis.
- To quantify how changes in substrate modulus affect wetting behavior.
- To determine the threshold modulus for significant deformation-induced contact angle variation.
Main Methods:
- Wetting experiments using water and ethylene glycol on elastomeric substrates.
- Varying substrate stiffness by peroxide crosslinking of natural and butadiene rubber.
- Characterization of surface chemistry using attenuated total reflecting infrared spectroscopy and X-ray photoelectron spectroscopy.
- Surface roughness analysis via atomic force microscopy.
Main Results:
- Contact angle hysteresis varied significantly with the bulk tensile modulus (E) of the elastomers.
- Soft, uncrosslinked butadiene rubber showed high hysteresis (69°) due to visible ridge formation.
- Increased crosslinking (e.g., 2% peroxide) led to a ~50-fold increase in modulus and reduced hysteresis to 22°.
- Deformation effects on contact angles were prominent when E < 5 MPa.
Conclusions:
- The mechanical properties, specifically the bulk tensile modulus, are critical determinants of contact angle hysteresis on soft substrates.
- Deformation at the contact line, evidenced by ridge formation, plays a key role in hysteresis.
- A modulus below 5 MPa is identified as a threshold for significant deformation-induced variations in contact angles.