Structural and Optical Properties of Sno2 Nano Films by Spin-Coating Method

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Date

2015

Authors

Uysal, Bengü Özuğur
Akkaya Arier, Ümit Özlem

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Journal ISSN

Volume Title

Publisher

Elsevier Science Bv

Open Access Color

Green Open Access

Yes

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Publicly Funded

No
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Abstract

In this work tin oxide (SnO2) nano films were deposited on glass substrates with different water content using the sol-gel spin-coating method. SnO2 is a wide band gap semiconductor and it belongs to the class of transparent conductive oxides (TCO). The influence of the water content and the heat treatment temperature on the structural and optical properties of the thin films is characterized by X-ray diffractometer (XRD) scanning electron microscope atomic force microscope ultraviolet visible spectrophotometer and spectrophotometer. Crystallite size of nano SnO2 films was controlled by SnCl2:water ratios. The most significant characteristic of nano materials is the increase in surface area as particle size decreases. XRD studies showed that the formation of tetragonal rutil phase was initiated at an annealing temperature close to 450 degrees C. The activation energy of nano SnO2 films for particle growth was calculated. The film has an activation energy of 42.8 kJ/mol and the optical band gap of 3.02-3.35 eV is proportional to the SnCl2:water ratio. The quantum size effect of nano particles was confirmed by the band gap energy shift using ultraviolet visible spectroscopy (UV-vis). SnO2 films have been considered as one of the most promising functional materials due to their wide direct band-gap and excellent electrical and optical properties. Those properties of SnO2 films allow them to be used in electronic and optoelectronic devices like gas sensors solar cells and lithium batteries etc. (C) 2015 Elsevier B.V. All rights reserved.

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Keywords

SnO2 nanoparticles, Activation energy, Optical properties, Sol-gel films, Optical properties, SnO2 nanoparticles, Activation energy, Sol-gel films

Turkish CoHE Thesis Center URL

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
34

Source

Applied Surface Science

Volume

350

Issue

Start Page

74

End Page

78
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CrossRef : 9

Scopus : 42

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Mendeley Readers : 40

SCOPUS™ Citations

42

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Web of Science™ Citations

34

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Page Views

9

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