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Laser Modification of Functional Fibers Obtained by Electrospinning.

Anna Firych-Nowacka1, Mariusz Tomczyk2, Ewa Korzeniewska2

  • 1Institute of Mechatronics and Information Systems, Lodz University of Technology, 22 Stefanowskiego Street, 90-537 Łódź, Poland.

Materials (Basel, Switzerland)
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Summary

Laser treatment alters magnetic composite microfibers, impacting their conductive properties for textronics applications like flexible sensors. Microscopic analysis revealed structural changes crucial for these functional materials.

Keywords:
electrospinningfunctional fiberslaser beamlaser treatmentmicro- and nanofibers

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Textronics

Background:

  • Functional materials at the micro- and nanoscale are critical for advanced applications.
  • Surface modifications significantly influence the properties of composite microfibers.
  • Textronics merges textiles with electronics for innovative devices.

Purpose of the Study:

  • To investigate the structural impact of laser treatment on magnetic composite microfibers.
  • To understand how surface changes affect the conductive properties of these microfibers.
  • To assess the potential of laser-treated microfibers in textronics applications.

Main Methods:

  • Microscopic analysis was employed to examine structural alterations.
  • Scanning Electron Microscopy (SEM) was used for surface morphology.
  • Atomic Force Microscopy (AFM) provided nanoscale topographical data.

Main Results:

  • Laser treatment induced observable changes on the surface structure of magnetic composite microfibers.
  • These structural modifications are hypothesized to influence the material's conductivity.
  • The study provides insights into tailoring microfiber properties for electronic applications.

Conclusions:

  • Laser treatment is a viable method for modifying magnetic composite microfibers.
  • Surface structural changes are key to enhancing functional properties for textronics.
  • Further research can optimize laser parameters for specific sensor applications.