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Complex shaped ZnO nano- and microstructure based polymer composites: mechanically stable and environmentally friendly coatings for potential antifouling applications.
Hölken, Iris; Hoppe, Mathias; Mishra, Yogendra K; Gorb, Stanislav N; Adelung, Rainer; Baum, Martina J.
Afiliação
  • Hölken I; Functional Nanomaterials, Institute for Materials Science, Faculty of Engineering, University of Kiel, Kaiserstr. 2, D-24143, Kiel, Germany. ih@tf.uni-kiel.de ykm@tf.uni-kiel.de.
  • Hoppe M; Functional Nanomaterials, Institute for Materials Science, Faculty of Engineering, University of Kiel, Kaiserstr. 2, D-24143, Kiel, Germany. ih@tf.uni-kiel.de ykm@tf.uni-kiel.de.
  • Mishra YK; Functional Nanomaterials, Institute for Materials Science, Faculty of Engineering, University of Kiel, Kaiserstr. 2, D-24143, Kiel, Germany. ih@tf.uni-kiel.de ykm@tf.uni-kiel.de.
  • Gorb SN; Functional Morphology and Biomechanics, Zoological Institute, Department of Zoology, University of Kiel, Botanischen Garten 1-9, D - 24098 Kiel, Germany.
  • Adelung R; Functional Nanomaterials, Institute for Materials Science, Faculty of Engineering, University of Kiel, Kaiserstr. 2, D-24143, Kiel, Germany. ih@tf.uni-kiel.de ykm@tf.uni-kiel.de.
  • Baum MJ; Functional Nanomaterials, Institute for Materials Science, Faculty of Engineering, University of Kiel, Kaiserstr. 2, D-24143, Kiel, Germany. ih@tf.uni-kiel.de ykm@tf.uni-kiel.de.
Phys Chem Chem Phys ; 18(10): 7114-23, 2016 Mar 14.
Article em En | MEDLINE | ID: mdl-26883913
ABSTRACT
Since the prohibition of tributyltin (TBT)-based antifouling paints in 2008, the development of environmentally compatible and commercially realizable alternatives is a crucial issue. Cost effective fabrication of antifouling paints with desired physical and biocompatible features is simultaneously required and recent developments in the direction of inorganic nanomaterials could play a major role. In the present work, a solvent free polymer/particle-composite coating based on two component polythiourethane (PTU) and tetrapodal shaped ZnO (t-ZnO) nano- and microstructures has been synthesized and studied with respect to mechanical, chemical and biocompatibility properties. Furthermore, antifouling tests have been carried out in artificial seawater tanks. Four different PTU/t-ZnO composites with various t-ZnO filling fractions (0 wt%, 1 wt%, 5 wt%, 10 wt%) were prepared and the corresponding tensile, hardness, and pull-off test results revealed that the composite filled with 5 wt% t-ZnO exhibits the strongest mechanical properties. Surface free energy (SFE) studies using contact angle measurements showed that the SFE value decreases with an increase in t-ZnO filler amounts. The influence of t-ZnO on the polymerization reaction was confirmed by Fourier transform infrared-spectroscopy measurements and thermogravimetric analysis. The immersion tests demonstrated that fouling behavior of the PTU/t-ZnO composite with a 1 wt% t-ZnO filler has been decreased in comparison to pure PTU. The composite with a 5 wt% t-ZnO filler showed almost no biofouling.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2016 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2016 Tipo de documento: Article