Effect of reaction temperature on the structural and electronic properties of stannic oxide nanostructures

Different nanostructured materials are having important roles in optoelectronics, gas sensing and photocatalytic applications due to their high surface to volume ratio. In this study, stannic oxide (SnO 2 ) nanostructures are prepared by hydrothermal method under optimal conditions at different temp...

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Veröffentlicht in:Bulletin of materials science 2020-12, Vol.43 (1), p.146, Article 146
Hauptverfasser: Rani, Nirmala, Jaggi, Neena
Format: Artikel
Sprache:eng
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Zusammenfassung:Different nanostructured materials are having important roles in optoelectronics, gas sensing and photocatalytic applications due to their high surface to volume ratio. In this study, stannic oxide (SnO 2 ) nanostructures are prepared by hydrothermal method under optimal conditions at different temperatures (160, 180 and 200°C) using surfactant cetyltrimethyl ammonium bromide. X-ray diffraction studies reveal rutile tetragonal structures of SnO 2 nanostructures, showing that average crystallite size is less than 10 nm. Field emission scanning electron microscope imaging reveals the morphological analysis of SnO 2 nanostructures fabricated at different reaction temperatures (160, 180 and 200°C). Energy dispersive X-ray spectroscopy confirmed the elemental analysis of SnO 2 nanostructures. FTIR spectrum is recorded to confirm the presence of various functional and vibrational groups in the prepared SnO 2 nanostructures. Optical properties of these nanostructures are analysed by UV–vis absorption studies. Bandgap of prepared SnO 2 decreased with increasing reaction temperature. Two-probe setup along with Keithley source metre is used for analysis of electrical properties of SnO 2 nanostructures.
ISSN:0250-4707
0973-7669
DOI:10.1007/s12034-020-02141-3