Micropatterning of Confined Surfaces with Polymer Brushes by Two-Photon-Initiated Reversible Addition–Fragmentation Chain-Transfer Polymerization

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Abstract

Photopatterned polymer brushes provide a viable option to alter the surface properties of biosensors, substrates for tissue engineering, or microelectronic implants. Although the one-photon direct laser writing enables excellent control over pattern geometry, it has an inherently limited writing resolution caused by the used light source; moreover, no patterning of undercuts or channels is possible. This article describes the preparation of patterned polymer brushes on confined glass substrates using two-photon-initiated reversible addition–fragmentation chain-transfer (2PRAFT) polymerization of N-acryloylmorpholine as a hydrophilic model monomer. The polymer brushes prepared by 2PRAFT exhibit a height of 10 nm, as confirmed by atomic force microscopy. In addition, well-defined printed structures down to 5 μm size are prepared, which outperforms the currently achieved resolution of polymer brushes prepared by one-photon direct laser writing.

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Helfert, S., Zandrini, T., Rohatschek, A., Rufin, M., Machata, P., Zahoranová, A., … Baudis, S. (2025). Micropatterning of Confined Surfaces with Polymer Brushes by Two-Photon-Initiated Reversible Addition–Fragmentation Chain-Transfer Polymerization. Small Science, 5(1). https://doi.org/10.1002/smsc.202400263

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