Funct. Mater. 2026; 33 (2): 256-268.

doi:https://doi.org/10.15407/fm33.02.256

Study of structural, wettability, optical and electrical properties of fluorine doped SnO2 (F-SnO2) sprayed thin films

Warda Darenfad1, Noubeil Guermat2,3, Zehira Belamri4, Kamel Mirouh1

1Thin Films and Interfaces Laboratory (LCMI), University of Constantine 1, 25000 Constantine, Algeria
2Department of Electronics, Faculty of Technology, University of M’sila, University Pole, Rood Bordj Bou Arreridj, 2800 M’sila, Algeria
3Study of Electronic Materials for Medical Applications Laboratory (LEMEAMED), University of Constantine 1, 25000 Constantine, Algeria
4Phase Transformation Laboratory, University of Constantine 1, 25000 Constantine, Algeria

Abstract: 

SnO2:F thin films were successfully deposited onto glass substrates using a low-cost spray pyrolysis technique. The influence of fluorine concentration on the structural, morphological, optical, wettability, and electrical properties of the films was systematically investigated. X-ray diffraction and Raman spectroscopy analyses confirmed the formation of single-phase polycrystalline SnO2 films with a tetragonal rutile structure and a preferential orientation along the (200) plane. Surface wettability studies revealed hydrophilic behavior for all samples with contact angle values lower than 90°. Optical measurements showed high transparency in the visible region, with average transmittance ranging from approximately (71 ± 0.5) % to (81 ± 0.5) %, while the film doped with 6% fluorine exhibited the highest transparency. The optical band gap increased from (3.75 ± 0.02) eV to (3.87 ± 0.02) eV with increasing fluorine concentration, and the highest optical band gap value of (3.87 ± 0.02) eV was obtained for the 6% F-doped film. Electrical measurements demonstrated a significant improvement in conductivity upon fluorine doping, reaching a high conductivity of (14.057 ± 0.5) Ω–1.cm–1 for the 6% F-doped film. The obtained results show that SnO2:F thin films prepared by spray pyrolysis have high optical transparency and high electrical conductivity, which makes them promising candidates for transparent conducting oxide (TCO) applications in optoelectronic and photovoltaic devices.

Keywords: 
Thin films, F-doped SnO2, Spray pyrolysis, XRD, EDX, Hydrophilic.

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