Effect of Annealing on the Structural and Optical Properties of ZnO/ITO and AZO/ITO Thin Films Prepared by Sol-Gel Spin Coating

Authors

  • Paulus Lobo Gareso Department of Physics, Faculty of Mathematics and Natural Sciences, Hasanuddin University, Makassar 90245, Indonesia
  • Heryanto Heryanto Department of Physics, Faculty of Mathematics and Natural Sciences, Hasanuddin University, Makassar 90245, Indonesia
  • Eko Juarlin Department of Physics, Faculty of Mathematics and Natural Sciences, Hasanuddin University, Makassar 90245, Indonesia
  • Paulina Taba Department of Chemistry, Faculty of Mathematics and Natural Sciences, Hasanuddin University, Makassar 90245, Indonesia

DOI:

https://doi.org/10.48048/tis.2023.6521

Keywords:

AZO thin films, Excitonic absorption, Refractive index, Spin coating, Thermal annealing

Abstract

This paper aims to investigate the effect of annealing on the structural and optical properties of ZnO/ITO and AZO/ITO thin films. In the preparation of ZnO and AZO films, zinc acetate dehydrate (Zn(CH3COO)2.2H2O), ethanol, diethanolamine (DEA), and AlCl3 were used as a starting material, solvent, stabilizer, and dopant sources, respectively. Both ZnO and AZO films were fabricated on ITO (indium tin oxide) substrates using the spin coating technique at room temperature with a rotating speed of 3,000 rpm in 30 s. The films were heated at various temperatures in the temperature range of 400 - 600 °C for 60 min. The crystallite size of the film is calculated using Debye-Scherrer and Williamson-Hall Methods. Based on the UDM results, the crystallite size of ZnO/ITO and AZO/ITO films increases after annealing in comparison with the films before annealing.  From the optical UV-Vis measurements, there was an increase in the transmittance value of the samples after annealing. The transmittance value of ZnO/ITO and AZO/ITO films increases from 40 % before annealing to approximately 80 and 90 %, respectively after annealing. The increase in the transmittance valued in both ZnO/ITO and AZO/ITO after annealing is mainly due to an improvement in the crystalline phase of these films. The band gap energy of ZnO and AZO films is reduced with increasing annealing temperatures, from 3.26 eV before annealing to 3.19 eV for ZnO and 3.23 eV for AZO films after annealing at 600 °C.

HIGHLIGHTS

  • The sol-gel spin coating method was used to study the effect of annealing on the structural and optical properties of ZnO/ITO and AZO/ITO films
  • The transmittance valued in both ZnO/ITO and AZO/ITO after annealing increase as a result of an improvement in the crystalline phase of these films
  • Reducing the amorphous phase and the increase of the crystallite size of the films are the main reason for narrowing the band gap energy of the ZnO/ITO and AZO/ITO films

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References

P Kumar, S Dev, SS Dhayal, V Acharya, S Kumar, S Kumar, N Singh and R Dhar. Synergistic effect of Mg and Se co-doping on the structural, optical and anti-bacterial activity of ZnO thin films. Inorg. Chem. Comm. 2021; 131, 108801.

H Guendouz, A Bouaine and N Brihi. Ultrawide bandgap high near ultraviolet transparency amorphous Sn-Al co-doped ZnO thin films. J. Non Crystalline Solid. 2021; 569, 121001.

A Samavati, A Awang, Z Samavati, AF Ismail, MHD Othman, M Velashjerdi, G Eisaabadi and A Rostami. Influence of ZnO nanostructure configuration on tailoring the optical bandgap: Theory and experiment. Mater. Sci. Eng. B 2021; 263, 114811.

YQ Su, Y Zhu, D Yong, M Chen, L Su, A Chen, Y Wu, B Pan and Z Tang. Enhanced exciton binding energy of ZnO by long-distance perturbation of doped Be atoms. J. Phys.Chem. Lett. 2016; 7, 1484-9.

RV Hariwal, HK Malik, A Negi and K Asokan. Favorable of optical absorbance, bandgap and surface roughness of ZnO thin films by C ion implantation at the critical angle. Appl. Surf. Sci. Adv. 2021; 7, 100189.

M Ding, Z Guo, L Zhou, X Fang, L Zhang, L Zeng, L Xie and H Zhao. One-dimensional zinc oxide nanomaterials for application in high-performance advanced optoelectronic devices. Crystals 2018; 8, 223.

J Rodrigues, AFR Cerquira, MG Sousa, NF Santos, A Pimentel, E Fortunato, AFD Cunha, T Monteiro and FM Costa. Exploring the potential of laser assisted flow deposition grown ZnO for photovoltaic applications. Mater. Chem. Phys. 2016; 177, 322-9.

NP Shetti, SD Bukkitgar, KR Reddy, CV Reddy and TM Aminabhavi. ZnO-based nanostructured electrodes for electrochemical sensors and biosensors in biomedical applications. Biosens. Bioelectron. 2019; 141, 111417.

T Logu, P Soundarrajan, D Naveena, K Sankarasubramanian, SMS Kumar and K Sethuraman. Specific Al mole ratio doping aided flake-like ZnO surface morphology nanostructures film for efficient window layer in CuInS2 photovoltaic cells. Sol. Energ. 2019; 177, 108-17.

AM Nahhas. Review of GaN/ZnO Hybrid Structures Based Materials and Devices. Am. J. Nano Res. Appl. 2018; 6, 34-53.

AK Jazmati and B Abdallah. Optical and structural study of ZnO thin films deposited by RF magnetron sputtering at different thickness: A comparison with a single crystal. Mater. Res. 2018; 21, 1-6.

G Nam and JY Leem. Fast-response photoconductive ultraviolet light detectors fabricated using high-quality ZnO films obtained by plasma-assisted molecular beam epitaxy. Ceram. Int. 2017; 43, 11981-5.

S Roguai and A Djelloul. A structural and optical properties of Cu doped ZnO films prepared by spray pyrolysis. Appl. Phys. Mater. Sci. Process. 2020; 126, 122.

V Kumar, SK Singh, H Sharma, S Kumar, MK Banerjee and A Vij. Investigation of structural and optical properties of ZnO thin films of different thickness grown by pulsed laser deposition method. Phys. B Condens. Matter 2019; 552, 221-6.

NL Okoli, CJ Nkamuo and CI Elekalachi. Effect of dip time on electrodeposited zinc oxide nanofilm. Am. J. Mater. Synth. Process. 2018; 3, 7-11.

A Sharma, RK Khangarot, N Kumar, S Chattopdhyay and KP Misra. Rise in UV and blue emission and reduction of surface roughness due to the presence of Ag and Al in monocrystalline ZnO films grown by sol-gel spin coating. Mater. Tech. 2021; 36, 541-51.

M Dehghan and A Behjat. Deposition of zinc oxide as an electron transport layer in planar perovskite solar cells by spray and SILAR methods comparable with spin coating. RSC Adv. 2019; 9, 20917-24.

P Popielarski, L Mosinska, W Bala, K Paprocki, Yu Zorenko, T Zorenko and M Sypniewska. Persistent photoconductivity in ZnO thin films grown on Si substrate by spin coating method. Opt. Mater. 2019; 97, 109343.

MI Khan, KA Bhatti, R Qindeel, N Alonizan and HS Althobaiti. Characterization of multilayer ZnO thin films deposited by sol-gel spin coating technique. Results Phys. 2017; 7, 651-5.

S Islam, KMA Hussain and MJ Rashid. Deposition and optical characterization of ZnO thin films on glass substrate. J. Phys. Conf. 2018; 1086, 012009.

N Hacini, M Ghamnia, MA Dahamni, A Boukhachem, JJ Pireaux and L Houssiau. Compositional, structural, morphological, and optical properties of ZnO thin films prepared by PECVD technique. Coatings 2021; 11, 202.

W Yang, F Wang, Z Guan, P He, Z Liu, L Hu, M Chen, C Zhang, X He and Y Fu. Comparative study of ZnO thin films grown on quartz glass and sapphire (001) substrates by means of magneton sputtering and high-temperature annealing. Appl. Sci. 2019; 9, 4509.

CY Tsai, JD Lai, SW Feng, CH Chen, FW Yang, HC Wang and LW Tu. Characterizations and growth of textured well-faceted ZnO films by low-pressure chemical vapor deposition on ITO glass substrates. Superlattice. Microst. 2017; 111, 1073-81.

S Arora. ZnO/MgO/ITO structured thin film transistor for ultraviolet photo detector application. Mater. Today Proc. 2020; 30, 150-2.

J Soudi, KM Sandeep, BK Sarojini, PS Patil, SR Maidur and KM Balakrishna. Thermo-optic effects mediated self focusing mechanism and optical power limiting studies of ZnO thin films deposited on ITO coated PET substrates by RF magnetron sputtering under continuous wavelength laser regime. Optik 2021; 225, 165835.

D Aryanto, RM Maulana, T Sudiro, Masturi, AS Wismogroho, P Sebayang, M Ginting and P Marwoto. Effect of post-thermal annealing on the structural of ZnO thin films deposited using sol-gel spin-coating method. AIP Conf. Proc. 2017; 1862, 030045.

D Aryanto, P Marwoto, T Sudiro, AS Wismogroho and Sugianto. Growth of a-axis-oriented Al-doped ZnO thin film on glass substrate using unbalanced DC magnetron sputtering. J. Phys. Conf. 2019; 1191, 012031.

E Muchuweni, TS Sathiaraj and H Nyakotyo. Synthesis and characterization of zinc oxide thin films for optoelectronic applications. Heliyon 2017; 3. e0028.

S Ilyas, Heryanto, B Abdullah, and D Tahir. X-ray diffraction analysis of nanocomposite Fe3O4/activated carbon by Williamson-Hall, and size-strain plot methods. Nano Struct. Nano Objects 2019; 20, 100396.

A Katiyar, N Kumar, P Srivastava, RK Shukla and A Srivastava. Structural and physical parameters of sol-gel spin coated ZnO thin films: Effect of sol concentration. Mater. Today Proc. 2020; 29, 1098-103.

SH Sabeeh and RH Jassam. The effect of annealing temperature and Al dopant on characterization of ZnO thin films prepared by sol-gel method. Results Phys. 2018; 10, 212-6.

AT Nomaan, AA Ahmed, NM Ahmed, MI Idris, MR Hashim and M Rashid. ZnO quantum dot based thin films as promising electron transport layer: Influence of surface-to-volume ratio on the photoelectric properties. Ceram. Int. 2021; 47, 12397-409.

J Sun, C Shan, M Zhao and D Jiang. Research on piezo-phototronic effect in ZnO/AZO heterojunction flexible ultraviolet photodetectors. Optik 2021; 243, 167472.

H Ali, AM Alsmadi, B Salameh, M Mathai, M Shatnawi, NMA Hadia and EMM Ibrahim. Influence of nickel doping on the energy band gap, luminescence, and magnetic order of spray deposited nanostructured ZnO thin films. J. Alloy. Comp. 2020; 816, 152538.

U Chaitra, D Kekuda and KM Rao. Effect of annealing temperature on the evolution of structural, microstructural, and optical properties of spin coated ZnO thin films. Ceram. Int. 2017; 43, 7115-22.

AM Alsaada, QM Al-Bataineh, AA Ahmad, Z Albataineh and A Telfah. Optical band gap and refractive index dispersion parameters of boron-doped ZnO thin films: A novel derived mathematical model from the experimental transmission spectra. Optik 2020; 211, 164641.

G Malik, S Mourya, J Jaiswal and R Chandra. Effect of annealing parameters on optoelectronic properties of highly ordered ZnO thin films. Mater. Sci. Semicond. Process. 2019; 100, 200-13.

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Published

2022-12-27

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