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The interaction of the pulsed laser irradiation with titania nanotubes - Theoretical studies on the thermal effect

Abstract

This paper reports temperature dispersion simulations of titania nanotubes irradiated by the 355 nm, pulsed, nanosecond laser. The modelling with the use of Finite Elements Method concerns titania nanotubes of the length and the wall thickness in the range of 0.5–2 μm and 5–20 nm, respectively. The uniqueness of the morphology was preserved by ensuring the wall thickness variation along the height of the tube, which was determined by an exponential equation. The easily adapted model of optical transition under the heat treatment in vacuum was successfully introduced. According to the obtained results, the change in titania nanotube shape and formation of the doping centres during laser annealing are crucial to accurately reproduce the temperature distribution along the nanotubes. The temperature profiles suggest that treatment with a fluence of 25 mJ cm−2 at 355 nm wavelength may lead to the re-solidification of the nanotubes surface only, if their wall is thinner than 15 nm. Such simulations are reported for the first time and are important for the understanding of thermal transport in nanomaterials with highly ordered, tubular architecture.

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Authors (4)

  • Photo of  Piotr Kupracz

    Piotr Kupracz

  • Photo of  Katarzyna Grochowska

    Katarzyna Grochowska

  • Photo of  Jakub Wawrzyniak

    Jakub Wawrzyniak

    • Instytut Maszyn Przepływowych PAN
  • Photo of dr hab. inż. Katarzyna Siuzdak

    Katarzyna Siuzdak dr hab. inż.

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Details

Category:
Articles
Type:
artykuły w czasopismach
Published in:
INTERNATIONAL JOURNAL OF THERMAL SCIENCES no. 162,
ISSN: 1290-0729
Language:
English
Publication year:
2021
Bibliographic description:
Kupracz P., Grochowska K., Wawrzyniak J., Siuzdak K.: The interaction of the pulsed laser irradiation with titania nanotubes - Theoretical studies on the thermal effect// INTERNATIONAL JOURNAL OF THERMAL SCIENCES -Vol. 162, (2021), s.106800-
DOI:
Digital Object Identifier (open in new tab) 10.1016/j.ijthermalsci.2020.106800
Verified by:
Gdańsk University of Technology

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