Control of NLO and photocatalysis properties based on the use of Sn-doped ZnO thin films for optoelectronics applications

Author:

Abed S.1ORCID,Djaaboube H.2ORCID,Aouati R.2ORCID,Bouaballou A.2ORCID,Bouchouit K.1ORCID,Andrushchak A.3ORCID,Wielgosz R.4ORCID,Taboukhat S.5ORCID,Sahraoui B.5ORCID

Affiliation:

1. Laboratoire de Didactique des Sciences Physiques, Chimiques et Applications, Ecole Normale Supérieure de Constantine, Ville Universitaire, Constantine, Algeria

2. Thin films and interfaces laboratory, University of Frères Mentouri Constantine 1, Constantine 25000, Algeria

3. Lviv Polytechnic National University, 12 Bandery Street, 79013 Lviv, Ukraine

4. Energia Oze Sp. z o.o., ul. Czȩstochowska 7, 42-274 Konopiska, Poland

5. University of Angers, Photonics Laboratory of Angers: LPHIA, SFR MATRIX, 2 Bd Lavoisier 49045 ANGERS cedex 2, France

Abstract

Thin films of zinc oxide (ZnO) have unique properties that make them suitable for various applications. In this study, we used a spray pyrolysis process to develop undoped ZnO and ZnO doped with Sn thin films on a glass substrate. We aimed to investigate the effect of Sn concentration on the optical, nonlinear optical, and structural properties of ZnO:Sn thin films. X-ray diffraction analysis revealed that all the deposited ZnO thin films exhibit polycrystalline hexagonal structures well-oriented along the c-axis. The obtained films were transparent in the visible range, with a transmittance between 70% and 80%. The optical energy bandgap values for the films varied from 3.16 eV to 3.29 eV. We also determined the second- and third-order nonlinear susceptibilities, which decreased with increasing Sn concentration. We investigated the photocatalytic activity of the ZnO-doped Sn thin films using methylene blue dye under visible light. Sn doping enhanced the photocatalytic activity of ZnO thin films, with constant rate values of 0.00046 and 0.00074 min[Formula: see text] for ZnO and ZnO:Sn thin films, respectively.

Funder

the European Union Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie

Publisher

World Scientific Pub Co Pte Ltd

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