Photolyzable Polymer Brushes: Subtractive 3D Structuring of Surfaces Using Water and Light

H Henrik Kalmer (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia) F Federica Sbordone (Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany) P Phuong T. Do (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia) K Kai Mundsinger (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia) H Hazal Kayas (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia) R Robert T. Jones J Jayanti Mendhi (Central Analytical Research Facility (CARF) Queensland University of Technology (QUT) Brisbane QLD Australia) T Tim R. Dargaville (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia) D Damien G. Harkin (School of Biomedical Sciences Queensland University of Technology (QUT) Brisbane QLD Australia) L Lukas Michalek (Department of Chemical Engineering) A Andrew Nelson H Hendrik Frisch (Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia)

Abstract

ABSTRACT Polymer brushes are a key technology for designing surfaces, with applications in biomedicine alone including biosensing, cell culture, regenerative medicine, and antibacterial coatings. The structuring of polymer brushes has the potential to precisely tailor interfaces for specific application requirements. However, complex fabrication processes can limit the applications of polymer brushes. Herein, a subtractive patterning process is reported, which decouples initial fabrication from the structuring process. Using radical ring‐opening polymerization of cyclic monomers with photocleavable cyclobutane rings, photodegradable targets are directly embedded into the polymer brush main chains. After the initial fabrication, these brushes can be readily degraded with light, triggering photocleavage of the cyclobutane units. This enables continuous brush degradation of over 50% of brush height for topographical patterning without affecting brush properties such as hydrophilicity and adhesion force. The inherent photodegradability of the polymer brush eliminates the need for additional chemicals or catalysts and can be carried out using nothing but water and light at ambient temperature.

Article Details

Volume / Issue Vol. 65, Issue 22
Published May 25, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

H

Henrik Kalmer

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia

F

Federica Sbordone

Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany

P

Phuong T. Do

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia

K

Kai Mundsinger

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia

H

Hazal Kayas

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia

R

Robert T. Jones

J

Jayanti Mendhi

Central Analytical Research Facility (CARF) Queensland University of Technology (QUT) Brisbane QLD Australia

T

Tim R. Dargaville

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia

D

Damien G. Harkin

School of Biomedical Sciences Queensland University of Technology (QUT) Brisbane QLD Australia

L

Lukas Michalek

Department of Chemical Engineering

A

Andrew Nelson

H

Hendrik Frisch

Centre for Materials Science Queensland University of Technology (QUT) Brisbane QLD Australia