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Download filePolydimethylsiloxane-Based Superhydrophobic Surfaces on Steel Substrate: Fabrication, Reversibly Extreme Wettability and Oil–Water Separation
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posted on 2016-12-29, 00:00 authored by Xiaojing Su, Hongqiang Li, Xuejun Lai, Lin Zhang, Tao Liang, Yuchun Feng, Xingrong ZengFunctional
surfaces for reversibly switchable wettability and oil–water
separation have attracted much interest with pushing forward an immense
influence on fundamental research and industrial application in recent
years. This article proposed a facile method to fabricate superhydrophobic
surfaces on steel substrates via electroless replacement deposition
of copper sulfate (CuSO4) and UV curing of vinyl-terminated
polydimethylsiloxane (PDMS). PDMS-based superhydrophobic surfaces
exhibited water contact angle (WCA) close to 160° and water sliding
angle (WSA) lower than 5°, preserving outstanding chemical stability
that maintained superhydrophobicity immersing in different aqueous
solutions with pH values from 1 to 13 for 12 h. Interestingly, the
superhydrophobic surface could dramatically switch to the superhydrophilic
state under UV irradiation and then gradually recover to the highly
hydrophobic state with WCA at 140° after dark storage. The underlying
mechanism was also investigated by scanning electron microscopy, Fourier
transform infrared spectroscopy, and X-ray photoelectron spectroscopy.
Additionally, the PDMS-based steel mesh possessed high separation
efficiency and excellent reusability in oil–water separation.
Our studies provide a simple, fast, and economical fabrication method
for wettability-transformable superhydrophobic surfaces and have the
potential applications in microfluidics, the biomedical field, and
oil spill cleanup.
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Keywords
chemical stabilityreversibly switchable wettabilitysuperhydrophilic statefabrication methodsuperhydrophobicity immersingpH valuesUV irradiationwettability-transformable superhydrophobic surfacesvinyl-terminated polydimethylsiloxanesteel substratessuperhydrophobic surfacesscanning electron microscopyPDMS-based steel meshWSAcopper sulfatePolydimethylsiloxane-Based Superhydrophobic Surfaceswater contact angleapplicationelectroless replacement depositionseparation efficiencySteel SubstratePDMS-based superhydrophobic surfacesX-ray photoelectron spectroscopyWCAsuperhydrophobic surfaceCuSO 4oil spill cleanup12 h