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arXiv · 2608.09041

Wrinkling in Selected Polymer Thin Films Induced by Combined Ion Beam and Humidity Exposure

Abstract

This study investigates ion beam sputtering (IBS)-induced surface wrinkling phenomena in three polymers with varying hydrophilicity: poly-hydroxy-ethyl-methacrylate (pHEMA), poly-4-vinyl pyridine (p4VP), and poly-2,4,6,8-tetramethyl-2,4,6,8-tetravinylcyclotetrasiloxane (pV4D4). It is observed that pHEMA and p4VP films wrinkle only when exposed to ion bombardment and subsequent water vapor exposure. No wrinkling is observed in pV4D4 under these same conditions. X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FTIR) are performed before IBS, after IBS, and after exposure to humidity. XPS shows that IBS drives chemical changes within the surface layer, creating a graphitized film at the surface. For the polymer films that exhibit wrinkling (pHEMA and p4VP), XPS and FTIR indicate water absorption in both the surface and the bulk of the films, resulting in swelling. We conjecture that the formation of wrinkles arises from this swelling being mechanically constrained by the rigid underlying silicon substrate and the stiff graphitized surface layer. In contrast, the absence of wrinkle formation in pV4D4 under the same experimental conditions can be attributed to its comparatively low water absorption and the correspondingly limited swelling response.

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BibTeXRIS

Alessia Danagoulian, Benli Jiang, Nicholas Russo, Colette Abadie, Jalal Karimzadeh Khoei, Grace Pettis, Jocelyn Zhang, Neil Baker, Eda Güney, Omid Moradi, Wei-Jing Chen, Jiaqi Tang, Robert Sims Jr, Kevin E. Smith, Gozde Ozaydin Ince, Karl F. Ludwig Jr. 2026-08-10. Wrinkling in Selected Polymer Thin Films Induced by Combined Ion Beam and Humidity Exposure. https://arxiv.org/abs/2608.09041

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