Engineering nitroxide functional surfaces using bioinspired adhesion

, Steinkoenig, Jan, , , Trouillet, Vanessa, Krolla-Sidenstein, Peter, , , , , & (2018) Engineering nitroxide functional surfaces using bioinspired adhesion. Langmuir, 34(10), pp. 3264-3274.

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Description

We pioneer a versatile surface modification strategy based on mussel-inspired oxidative catecholamine polymerization for the design of nitroxide-containing thin polymer films. A 3,4-dihydroxy-l-phenylalanine (l-DOPA) monomer equipped with a 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO)-derived oxidation-labile hydroxylamine functional group is employed as a universal coating agent to generate polymer scaffolds with persistent radical character. Various types of materials including silicon, titanium, ceramic alumina, and inert poly(tetrafluoroethylene) (PTFE) were successfully coated with poly(DOPA-TEMPO) thin films in a one-step dip-coating procedure under aerobic, slightly alkaline (pH 8.5) conditions. Steadily growing polymer films (∼1.1 nm h–1) were monitored by ellipsometry, and their thicknesses were critically compared with those obtained from atomic force microscopic cross-sectional profiles. The heterogeneous composition of surface-adherent nitroxide scaffolds examined by X-ray photoelectron spectroscopy was correlated to that examined by in-solution polymer analysis via high-resolution electrospray ionization mass spectrometry, revealing oligomeric structures with up to six repeating units, mainly composed of covalently linked dihydroxyindole along the polymer backbone. Critically, the reversible redox-active character of the nitroxide-containing polymer scaffolds was investigated by cyclic voltammetric measurements, revealing a convenient and facile access route to electrochemically active nitroxide polymer coatings with potential application in electronic devices such as organic radical batteries.

Impact and interest:

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17 citations in Web of Science®
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ID Code: 223900
Item Type: Contribution to Journal (Journal Article)
Refereed: Yes
ORCID iD:
Lang, Christianeorcid.org/0000-0003-2737-5024
Goldmann, Anjaorcid.org/0000-0002-1597-2836
Barner, Leonieorcid.org/0000-0002-6034-0942
Blinco, Jamesorcid.org/0000-0003-0092-2040
Barner-Kowollik, Christopherorcid.org/0000-0002-6745-0570
Fairfull-Smith, Kathrynorcid.org/0000-0002-9412-632X
Additional Information: Acknowledgments: K.E.F.-S., L.B., and C.B.-K. acknowledge financial support from the Australian Research Council (Discovery Project DP150100234) and the Queensland University of Technology (QUT). K.E.F.-S. acknowledges funding from an Australian Research Council Future Fellowship (FT140100746). C.B.-K. acknowledges funding by an Australian Research Council Laureate Fellowship as well as continuous funding from the Karlsruhe Institute of Technology (KIT) in the context of the BIFTM program of the Helmholtz association. J.S.’s studies are funded by a Landesgraduierten scholarship by the state of Baden-Wuerttemberg. The K-Alpha+ instrument was financially supported by the Federal Ministry of Economics and Technology on the basis of a decision by the German Bundestag. Some of the data reported in this article were obtained at the Central Analytical Research Facility (CARF) operated by the Institute for Future Environments (QUT). Access to CARF is supported by generous funding from the Science and Engineering Faculty (QUT).
Measurements or Duration: 11 pages
Additional URLs:
DOI: 10.1021/acs.langmuir.7b03755
ISSN: 1520-5827
Pure ID: 33353259
Divisions: Past > Institutes > Institute for Future Environments
Past > QUT Faculties & Divisions > Science & Engineering Faculty
Past > Schools > School of Chemistry, Physics & Mechanical Engineering
Funding:
Copyright Owner: 2018 American Chemical Society
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Deposited On: 07 Nov 2021 04:10
Last Modified: 19 Apr 2026 22:45