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Scalable Fabrication of Super-Liquid-Repellent Surfaces Enabled by Overhanging PTFE Nanospikes on Needle-Like
Junho Choi1, Su-Min Bae2,3, Tomohiko Asakawa1
1Department of Mechanical Engineering, Tokyo City University, Tokyo 158-8557, Japan.
Abstract:
We present a scalable strategy for fabricating super-liquid-repellent surfaces by depositing polytetrafluoroethylene (PTFE) onto black silicon (bSi) substrates. Needle-like microstructures were initially fabricated on a Si wafer via fluorine plasma etching using plasma-based ion implantation and deposition (PBII&D). Subsequent thermal evaporation of PTFE formed overhanging nanospikes on the needle-like microstructures of bSi, resulting in a composite solid-air interface characteristic of the Cassie-Baxter state. The engineered surfaces exhibited outstanding repellency to various liquids, including water (θ* = 172°, θroll-off = 4°), diethylene glycol (θ* = 168°, θroll-off = 4.4°), hexadecane, and commercial ink for large-format inkjet printing. To extend this functionality to diverse substrates, we employed a supplementary approach using Si-based amorphous films, such as a-C:H:Si:O films, deposited using hexamethyldisiloxane as a precursor gas. Needle-like microstructures were successfully replicated using a-C:H:Si:O films via plasma etching under conditions identical to those used for bSi substrates. PTFE deposition on these replicated structures achieved comparable liquid-repellent performance, demonstrating the feasibility of integrating hierarchical bSi-inspired morphologies on diverse materials. The combined use of scalable techniques, such as PBII&D and thermal evaporation, enables large-area fabrication of robust liquid-repellent surfaces for industrial applications.
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