Original Research
Synthesis and characterization of SnO2/porous silicon hybrid nanostructures for gas sensing
M. I. Ismael
G. G. Ali
A. T. Zakar

Physics Department, College of Education for Pure Science, University of Mosul, Iraq


Journal of Ovonic Research 2024, 20(6),851-865; https://doi.org/10.15251/JOR.2024.206.851
Submitted:Oct 02, 2024
Accepted:Dec 06, 2024
Published:Dec 15, 2024
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Cite This Article
M. I. Ismael ,G. G. Ali ,A. T. Zakar . (2024). Journal of Ovonic Research. Synthesis and characterization of SnO2/porous silicon hybrid nanostructures for gas sensing, 20(6), ,851-865. https://doi.org/10.15251/JOR.2024.206.851
Abstract

In this work, Tin oxide SnO2 hybrid structures were deposited on porous silicon substrates via spray pyrolysis method. The impact of the current density changes ranging from 5- 15 mA/cm2 with HF concentration of 18% was investigated at fixed substrate temperature of 250Co. The XRD analysis for nanostructures revealed the presence of tetragonal structure of SnO2. The Scanning electron Microscope (SEM) images showed the sponge-like structure of PSi with grooves and cavities following the deposition of SnO2 on the substrate. It can be seen, the grain diameter arrangement of the SnO2 was found to be in the range from 42–64 nm. The I-V characteristics showed that the resistance raises with the current density of the SnO2/porous silicon. The optical results refers that the absorption of SnO2 nanostructure increases with the number of spraying times for values of (10,15 and 20) respectively. Moreover, the results also revealed a degradation of the energy gap from 3.3 to 2.82eV at the same spraying values. The higher sensitivity was found around 49.35% at etching current density of 15mA/cm2. The structure quality of the SnO2/PSi provides the possibility of using such structures in the high-quality sensors.

©2026 by the authors. Submitted for possible open access publication under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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