Integrated FRET Polymers Spatially Reveal Micro‐ to Nanostructure and Irregularities in Electrospun Microfibers

Author:

Liao Xiaojian1,Sychev Dmitrii23,Rymsha Khrystyna3,Al‐Hussein Mahmoud4,Farinha José Paulo5,Fery Andreas23,Besford Quinn A.3ORCID

Affiliation:

1. Macromolecular Chemistry Bavarian Polymer Institute University of Bayreuth 95440 Bayreuth Germany

2. Technische Universität Dresden Chair for Physical Chemistry of Polymeric Materials Faculty of Chemistry and Food Science 01069 Dresden Germany

3. Leibniz‐Institut für Polymerforschung Dresden e.V. Hohe Str. 6 01069 Dresden Germany

4. Physics Department and Hamdi Mango Center for Scientific Research The University of Jordan Amman 11942 Jordan

5. Centro de Quimica Estrutural Department of Chemical Engineering Instituto Superior Técnico Universidade de Lisboa Lisboa 1049‐001 Portugal

Abstract

AbstractA spatial view of macroscopic polymer material properties, in terms of nanostructure and irregularities, can help to better understand engineering processes such as when materials may fail. However, bridging the gap between the molecular‐scale arrangement of polymer chains and the spatially resolved macroscopic properties of a material poses numerous difficulties. Herein, an integrated messenger material that can report on the material micro‐ to nanostructure and its processes is introduced. It is based on polymer chains labeled with fluorescent dyes that feature Förster resonance energy transfer (FRET) dependent on chain conformation and concentration within a host polymer material. These FRET materials are integrated within electrospun polystyrene microfibers, and the FRET is analyzed by confocal laser scanning microscopy (CLSM). Importantly, the use of CLSM allows a spatial view of material nanostructure and irregularities within the microfibers, where changes in FRET are significant when differences in fiber geometries and regularities exist. Furthermore, changes in FRET observed in damaged regions of the fibers indicate changes in polymer conformation and/or concentration as the material changes during compression. The system promises high utility for applications where nano‐to‐macro communication is needed for a better understanding of material processes.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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