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Exploring the optical and morphological properties of metal oxide thin films produced via reactive electron beam evaporation

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submitted on 2024-07-28, 10:15 and posted on 2024-07-28, 12:04 authored by Mohammad Istiaque Hossain, Brahim Aissa, Amith Khandakar, Kevin Thomas, Ahasanur Rahman, Said Mansour

We report on the development of metal oxide films with potential applications in energy conversion devices. Using an electron beam evaporator in an oxygen atmosphere, titanium, tin, nickel, molybdenum and aluminum oxides in room temperature were reactively deposited. The deposited films were characterized optically and structurally using ultraviolet–visible (UV–Vis) spectrometry, ellipsometry, X-ray photoelectron spectroscopy (XPS), contact angle and scanning electron microscopy. A systematic comparison between these filters confirmed that stacking layers with titanium dioxide (TiO2) and nickel oxide (NiO) are the best candidate for PV modules as they demonstrate higher transmission in the visible range. The morphological analysis confirms the formation of compact, uniform, and defect-free metal films, as validated by field emission scanning electron microscopy (FESEM). Additionally, contact angle measurements were conducted to assess the wettability of the metal surfaces. All oxide films exhibited semi-hydrophilic characteristics, indicating their ability to repel water from the surface and suggesting improved stability. The stoichiometry was impacted by the varying oxygen pressures at which each oxide was deposited. The transmittance of the TiO2 and NiO are more than 80% in the visible range. The results investigate potential applications as antireflection coatings, high reflectance mirrors and selective filters.

Other Information

Published in: Cogent Engineering
License: http://creativecommons.org/licenses/by/4.0/
See article on publisher's website: https://dx.doi.org/10.1080/23311916.2024.2338144

Funding

Open Access funding provided by the Qatar National Library.

History

Language

  • English

Publisher

Taylor & Francis

Publication Year

  • 2024

License statement

This Item is licensed under the Creative Commons Attribution 4.0 International License.

Institution affiliated with

  • Hamad Bin Khalifa University
  • Qatar Environment and Energy Research Institute - HBKU
  • Core Labs - QEERI
  • Qatar University
  • College of Engineering - QU

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