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Isıl İşlem Süresinin Ultrasonik Kimyasal Püskürtme ile Üretilen %1 Fe Katkılı ZnO Filmlerin Özellikleri Üzerine Etkileri

Yıl 2025, ERKEN GÖRÜNÜM, 1 - 1

Öz

Bu çalışmada; morfolojik, yapısal ve fotokatalitik özelliklerini incelemek amacıyla Ultrasonik Kimyasal Püskürtme yöntemi kullanılarak %1 Fe katkılı ZnO ince filmler üretilmiştir. UKP ile üretilen %1 Fe katkılı ZnO ince filmlere 500 ºC'de farklı sürelerde (1, 3 ve 5 saat) ısıl işlem uygulanmıştır. Farklı sürelerde tavlanan numunelere ait sonuçlar, ham numune ile morfolojik, yapısal özellikler ve fotokatalitik bozunma verimliliği açısından karşılaştırılmıştır. Isıl işlem süresi 3 saat olan ZnO ince filmlerinin daha belirgin kristal yapılara sahip olduğu ve yüzey morfolojilerinin daha düzenli ve homojen olduğu görülmüştür. Fotokatalitik davranışları incelendiğinde 3 saat ısıl işlem gören numunlerin bozunma verimliliğinin diğer numunelerden daha iyi olduğu belirlenmiştir. Sonuç olarak bu çalışma, ultrasonik kimyasal püskürtme yöntemiyle üretilen %1 Fe katkılı ZnO ince filmlerin tavlama süresinin filmlerin yapısal, morfolojik ve optik özelliklerini önemli ölçüde etkilediğini göstermektedir. Bu sonuçlar, özellikle 3 saatlik tavlama süresinin tercih edilmesi gerektiğini vurgulayarak ince film üretimi ve fotokatalitik uygulamalarda gelecekteki araştırmalara rehberlik etmektedir.

Etik Beyan

The authors of this paper declare that the materials and methods used in their study do not require ethical committee approval and/or any special legal permission

Destekleyen Kurum

This study was not supported by any funding source.

Kaynakça

  • [1] Liang, Z.Q., et al., “Effects of the Morphology of a ZnO Buffer Layer on the Photovoltaic Performance of Inverted Polymer Solar Cells”, Advanced Functional Materials, 22(10): 2194-2201, (2012).
  • [2] Diallo, A.K., et al., “Insight about electrical properties of low-temperature solution-processed Al-doped ZnO nanoparticle based layers for TFT applications”, Materials Science and Engineering B-Advanced Functional Solid-State Materials, 214: 11-18, (2016).
  • [3] Ozgür, U., et al., “A comprehensive review of ZnO materials and devices”, Journal of Applied Physics, 98(4), (2005).
  • [4] Lai, L.W. and C.T. Lee, “Investigation of optical and electrical properties of ZnO thin films”, Materials Chemistry and Physics, 110(2-3): 393-396, (2008).
  • [5] Nomura, K., et al., “Thin-film transistor fabricated in single-crystalline transparent oxide semiconductor”, Science, 300(5623): 269-1272, (2003).
  • [6] Garcés, F.A., et al., “Thickness dependence of crystalline structure of Al-doped ZnO thin films deposited by spray pyrolysis”, International Congress of Science and Technology of Metallurgy and Materials, Sam - Conamet 2014, 9: 221-229, (2015).
  • [7] Lupan, O., et al., “Effects of annealing on properties of ZnO thin films prepared by electrochemical deposition in chloride medium”, Applied Surface Science, 256(6): 1895-1907, (2010).
  • [8] Gritsenko, L.V., et al., “Effect of thermal annealing on properties of polycrystalline ZnO thin films”, Journal of Crystal Growth, 457: 164-170, (2017).
  • [9] Gorzkowska-Sobas, A., et al., “An investigation of Fe-doped ZnO thin films grown by magnetron sputtering”, Physica Scripta, T141, (2010).
  • [10] Nolan, M.G., et al., “The characterisation of aerosol-assisted CVD conducting, photocatalytic indium-doped zinc oxide films”, Journal of Photochemistry and Photobiology A: Chemistry, 219(1): 10-15, (2011).
  • [11] Mahmoud, A., et al., “Influence of Fe Substitution on Structural Morphological and Magnetic Properties of Zn1-xFexO Thin Films to Various Applications”. Sohang Journal of Sciences, 8(1): 91-99, (2023).
  • [12] Chen, H.X., et al., “Optical properties of Ti-doped ZnO films synthesized via magnetron sputtering”, Journal of Alloys and Compounds, 534: 59-63, (2012).
  • [13] Zhao, X., et al., “Effects of rapid thermal annealing on structural, magnetic and optical properties of Ni-doped ZnO thin films”, Current Applied Physics,12(3): 834-840, (2012).
  • [14] Bilgin, V., et al., “Iron doped ZnO thin films deposited by ultrasonic spray pyrolysis: structural, morphological, optical, electrical and magnetic investigations”, Journal of Materials Science-Materials in Electronics, 29(20): 17542-17551, (2018).
  • [15] Wang, C.Z., et al., “Structure, morphology and properties of Fe-doped ZnO films prepared by facing-target magnetron sputtering system”. Applied Surface Science, 255(15): 6881-6887, (2009).
  • [16] Luo, J.T., et al., “Enhanced electromechanical response of Fe-doped ZnO films by modulating the chemical state and ionic size of the Fe dopant”, Physical Review B, 82(1): 014116,(2010).
  • [17] Srinivasulu, T., K. Saritha, and K.T.R. Reddy, “Synthesis and characterization of Fe-doped ZnO thin films deposited by chemical spray pyrolysis”, Modern Electronic Materials, 3(2): 76-85, (2017).
  • [18] Nurfani, E., et al., “UV sensitivity enhancement in Fe-doped ZnO films grown by ultrafast spray pyrolysis”, Optical Materials,112: 110768, (2021).
  • [19] Goktas, A., I.H. Mutlu, and Y. Yamada, “Influence of Fe-doping on the structural, optical, and magnetic properties of ZnO thin films prepared by sol-gel method”, Superlattices and Microstructures, 57: 139-149, (2013).
  • [20] Sahoo, B., et al., “Mutual effect of solvent and Fe-In codoping on structural, optical and electronic properties of ZnO thin films prepared by spray pyrolysis technique”. Optik, 228: 166134, (2021).
  • [21] Gonullu, M.P., “Design and characterization of single bilayer ZnO/Al2O3 film by ultrasonically spray pyrolysis and its application in photocatalysis”, Micro and Nanostructures, 164: 107113, (2022).
  • [22] Gonullu, M.P., D.D. Cakil, and C. Cetinkaya, “Influence of thermal treatment and Fe doping on ZnO films by ultrasonic spray pyrolysis”, Thin Solid Films, 793: 140265, (2024).
  • [23] Bilgin, V., et al., “Electrical, structural and surface properties of fluorine doped tin oxide films”, Applied Surface Science, 256(22): 6586-6591, (2010).
  • [24] Gonullu, M.P., “The Effect of Annealing Technique on ZnO Film Properties”, Gazi University Journal of Science, 35(2): 618-629, (2022).
  • [25] Raoufi, D. and T. Raoufi, “The effect of heat treatment on the physical properties of sol-gel derived ZnO thin films”, Applied Surface Science, 255(11): 5812-5817, (2009).
  • [26] Paufler, P., CS Barrett, TB Massalski. Structure of Metals. Pergamon Press Oxford, New York, Toronto, Sydney,Wiley Online Library, (1981).
  • [27] Kuru, M. and H. Narsat, “The effect of heat treatment temperature and Mg doping on structural and photocatalytic activity of ZnO thin films fabricated by RF magnetron co-sputtering technique”, Journal of Materials Science-Materials in Electronics, 30(20): 18484-18495, (2019) .
  • [28] Atay, F., et al., “Optical, structural and surface characterization of CdO:Mg films”, Journal of Materials Science-Materials in Electronics, 22(5): 492-498, (2011).
  • [29] Jongnavakit, P., et al., “Surface and photocatalytic properties of ZnO thin film prepared by sol-gel method”, Thin Solid Films, 520(17): 5561-5567, (2012).
  • [30] Ba-Abbad, M.M., et al., “Visible light photocatalytic activity of Fe3+-doped ZnO nanoparticle prepared via sol–gel technique”, Chemosphere, 91(11): 1604-1611, (2013).
  • [31] Thongsuriwong, K., P. Amornpitoksuk, and S. Suwanboon, “Structure, morphology, photocatalytic and antibacterial activities of ZnO thin films prepared by sol-gel dip-coating method”, Advanced Powder Technology, 24(1): 275-280, (2013).
  • [32] Dong, S.H., et al., “Photocatalytic performance of ZnO:Fe array films under sunlight irradiation”, Physica B-Condensed Matter, 406(19): 3609-3612, (2011).
  • [33] Rong, P., et al., “Preparation and Photocatalytic Properties of Metal-Doped ZnO Nanofilms Grown on Graphene-Coated Flexible Substrates”, Materials, 13(16): 3589,(2020).
  • [34] Baradaran, M., et al., “The role of Al concentration on improving the photocatalytic performance of nanostructured ZnO/ZnO:Al/ZnO multilayer thin films”, Journal of Alloys and Compounds, 788: 289-301, (2019).
  • [35] Sutanto, H., et al., “Analysis of Fe-doped ZnO thin films for degradation of rhodamine B, methylene blue, and under visible light”, Materials Research Express, 8(11) 116402,(2021).

Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis

Yıl 2025, ERKEN GÖRÜNÜM, 1 - 1

Öz

In this study, 1% Fe-doped ZnO thin films were deposited using Ultrasonic Spray Pyrolysis (USP) to examine their structural, morphological, and photocatalytic properties. Heat treatment was applied to 1% Fe-doped ZnO thin films produced with USP at 500 ºC for different times (1, 3, and 5 hours). The results of the samples heat-treated for different times were compared with the as-deposited sample in terms of morphological, structural properties, and photocatalytic degradation efficiency. It was observed that the ZnO thin films with a heat treatment time of 3 hours had more distinct crystal structures, and their surface morphologies were more regular and homogeneous. When the photocatalytic behaviors were examined, it was determined that the degradation efficiency of the samples heat-treated for 3 hours was better than the other samples. In conclusion, this study shows that the heat treatment time of 1% Fe-doped ZnO thin films deposited by USP significantly affects the films' structural, morphological properties, and photocatalytic activity behaviors. These results emphasize that the heat treatment time of 3 hours should be preferred and guide future research in thin film production and photocatalytic applications.

Etik Beyan

The authors of this paper declare that the materials and methods used in their study do not require ethical committee approval and/or any special legal permission.

Destekleyen Kurum

This study was not supported by any funding source.

Kaynakça

  • [1] Liang, Z.Q., et al., “Effects of the Morphology of a ZnO Buffer Layer on the Photovoltaic Performance of Inverted Polymer Solar Cells”, Advanced Functional Materials, 22(10): 2194-2201, (2012).
  • [2] Diallo, A.K., et al., “Insight about electrical properties of low-temperature solution-processed Al-doped ZnO nanoparticle based layers for TFT applications”, Materials Science and Engineering B-Advanced Functional Solid-State Materials, 214: 11-18, (2016).
  • [3] Ozgür, U., et al., “A comprehensive review of ZnO materials and devices”, Journal of Applied Physics, 98(4), (2005).
  • [4] Lai, L.W. and C.T. Lee, “Investigation of optical and electrical properties of ZnO thin films”, Materials Chemistry and Physics, 110(2-3): 393-396, (2008).
  • [5] Nomura, K., et al., “Thin-film transistor fabricated in single-crystalline transparent oxide semiconductor”, Science, 300(5623): 269-1272, (2003).
  • [6] Garcés, F.A., et al., “Thickness dependence of crystalline structure of Al-doped ZnO thin films deposited by spray pyrolysis”, International Congress of Science and Technology of Metallurgy and Materials, Sam - Conamet 2014, 9: 221-229, (2015).
  • [7] Lupan, O., et al., “Effects of annealing on properties of ZnO thin films prepared by electrochemical deposition in chloride medium”, Applied Surface Science, 256(6): 1895-1907, (2010).
  • [8] Gritsenko, L.V., et al., “Effect of thermal annealing on properties of polycrystalline ZnO thin films”, Journal of Crystal Growth, 457: 164-170, (2017).
  • [9] Gorzkowska-Sobas, A., et al., “An investigation of Fe-doped ZnO thin films grown by magnetron sputtering”, Physica Scripta, T141, (2010).
  • [10] Nolan, M.G., et al., “The characterisation of aerosol-assisted CVD conducting, photocatalytic indium-doped zinc oxide films”, Journal of Photochemistry and Photobiology A: Chemistry, 219(1): 10-15, (2011).
  • [11] Mahmoud, A., et al., “Influence of Fe Substitution on Structural Morphological and Magnetic Properties of Zn1-xFexO Thin Films to Various Applications”. Sohang Journal of Sciences, 8(1): 91-99, (2023).
  • [12] Chen, H.X., et al., “Optical properties of Ti-doped ZnO films synthesized via magnetron sputtering”, Journal of Alloys and Compounds, 534: 59-63, (2012).
  • [13] Zhao, X., et al., “Effects of rapid thermal annealing on structural, magnetic and optical properties of Ni-doped ZnO thin films”, Current Applied Physics,12(3): 834-840, (2012).
  • [14] Bilgin, V., et al., “Iron doped ZnO thin films deposited by ultrasonic spray pyrolysis: structural, morphological, optical, electrical and magnetic investigations”, Journal of Materials Science-Materials in Electronics, 29(20): 17542-17551, (2018).
  • [15] Wang, C.Z., et al., “Structure, morphology and properties of Fe-doped ZnO films prepared by facing-target magnetron sputtering system”. Applied Surface Science, 255(15): 6881-6887, (2009).
  • [16] Luo, J.T., et al., “Enhanced electromechanical response of Fe-doped ZnO films by modulating the chemical state and ionic size of the Fe dopant”, Physical Review B, 82(1): 014116,(2010).
  • [17] Srinivasulu, T., K. Saritha, and K.T.R. Reddy, “Synthesis and characterization of Fe-doped ZnO thin films deposited by chemical spray pyrolysis”, Modern Electronic Materials, 3(2): 76-85, (2017).
  • [18] Nurfani, E., et al., “UV sensitivity enhancement in Fe-doped ZnO films grown by ultrafast spray pyrolysis”, Optical Materials,112: 110768, (2021).
  • [19] Goktas, A., I.H. Mutlu, and Y. Yamada, “Influence of Fe-doping on the structural, optical, and magnetic properties of ZnO thin films prepared by sol-gel method”, Superlattices and Microstructures, 57: 139-149, (2013).
  • [20] Sahoo, B., et al., “Mutual effect of solvent and Fe-In codoping on structural, optical and electronic properties of ZnO thin films prepared by spray pyrolysis technique”. Optik, 228: 166134, (2021).
  • [21] Gonullu, M.P., “Design and characterization of single bilayer ZnO/Al2O3 film by ultrasonically spray pyrolysis and its application in photocatalysis”, Micro and Nanostructures, 164: 107113, (2022).
  • [22] Gonullu, M.P., D.D. Cakil, and C. Cetinkaya, “Influence of thermal treatment and Fe doping on ZnO films by ultrasonic spray pyrolysis”, Thin Solid Films, 793: 140265, (2024).
  • [23] Bilgin, V., et al., “Electrical, structural and surface properties of fluorine doped tin oxide films”, Applied Surface Science, 256(22): 6586-6591, (2010).
  • [24] Gonullu, M.P., “The Effect of Annealing Technique on ZnO Film Properties”, Gazi University Journal of Science, 35(2): 618-629, (2022).
  • [25] Raoufi, D. and T. Raoufi, “The effect of heat treatment on the physical properties of sol-gel derived ZnO thin films”, Applied Surface Science, 255(11): 5812-5817, (2009).
  • [26] Paufler, P., CS Barrett, TB Massalski. Structure of Metals. Pergamon Press Oxford, New York, Toronto, Sydney,Wiley Online Library, (1981).
  • [27] Kuru, M. and H. Narsat, “The effect of heat treatment temperature and Mg doping on structural and photocatalytic activity of ZnO thin films fabricated by RF magnetron co-sputtering technique”, Journal of Materials Science-Materials in Electronics, 30(20): 18484-18495, (2019) .
  • [28] Atay, F., et al., “Optical, structural and surface characterization of CdO:Mg films”, Journal of Materials Science-Materials in Electronics, 22(5): 492-498, (2011).
  • [29] Jongnavakit, P., et al., “Surface and photocatalytic properties of ZnO thin film prepared by sol-gel method”, Thin Solid Films, 520(17): 5561-5567, (2012).
  • [30] Ba-Abbad, M.M., et al., “Visible light photocatalytic activity of Fe3+-doped ZnO nanoparticle prepared via sol–gel technique”, Chemosphere, 91(11): 1604-1611, (2013).
  • [31] Thongsuriwong, K., P. Amornpitoksuk, and S. Suwanboon, “Structure, morphology, photocatalytic and antibacterial activities of ZnO thin films prepared by sol-gel dip-coating method”, Advanced Powder Technology, 24(1): 275-280, (2013).
  • [32] Dong, S.H., et al., “Photocatalytic performance of ZnO:Fe array films under sunlight irradiation”, Physica B-Condensed Matter, 406(19): 3609-3612, (2011).
  • [33] Rong, P., et al., “Preparation and Photocatalytic Properties of Metal-Doped ZnO Nanofilms Grown on Graphene-Coated Flexible Substrates”, Materials, 13(16): 3589,(2020).
  • [34] Baradaran, M., et al., “The role of Al concentration on improving the photocatalytic performance of nanostructured ZnO/ZnO:Al/ZnO multilayer thin films”, Journal of Alloys and Compounds, 788: 289-301, (2019).
  • [35] Sutanto, H., et al., “Analysis of Fe-doped ZnO thin films for degradation of rhodamine B, methylene blue, and under visible light”, Materials Research Express, 8(11) 116402,(2021).
Toplam 35 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Malzeme Bilimi ve Teknolojileri, Bileşik Yarı İletkenler, Malzeme Karekterizasyonu
Bölüm Araştırma Makalesi
Yazarlar

Damla Dilara Çakıl 0000-0002-0100-9993

Meryem Polat Gönüllü 0000-0002-9503-227X

Cemil Çetinkaya 0000-0002-0298-1143

Ömer Şahin 0000-0002-2446-2512

Erken Görünüm Tarihi 11 Eylül 2025
Yayımlanma Tarihi 26 Eylül 2025
Gönderilme Tarihi 5 Eylül 2024
Kabul Tarihi 14 Ağustos 2025
Yayımlandığı Sayı Yıl 2025 ERKEN GÖRÜNÜM

Kaynak Göster

APA Çakıl, D. D., Polat Gönüllü, M., Çetinkaya, C., Şahin, Ö. (2025). Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis. Politeknik Dergisi1-1. https://doi.org/10.2339/politeknik.1544258
AMA Çakıl DD, Polat Gönüllü M, Çetinkaya C, Şahin Ö. Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis. Politeknik Dergisi. Published online 01 Eylül 2025:1-1. doi:10.2339/politeknik.1544258
Chicago Çakıl, Damla Dilara, Meryem Polat Gönüllü, Cemil Çetinkaya, ve Ömer Şahin. “Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis”. Politeknik Dergisi, Eylül (Eylül 2025), 1-1. https://doi.org/10.2339/politeknik.1544258.
EndNote Çakıl DD, Polat Gönüllü M, Çetinkaya C, Şahin Ö (01 Eylül 2025) Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis. Politeknik Dergisi 1–1.
IEEE D. D. Çakıl, M. Polat Gönüllü, C. Çetinkaya, ve Ö. Şahin, “Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis”, Politeknik Dergisi, ss. 1–1, Eylül2025, doi: 10.2339/politeknik.1544258.
ISNAD Çakıl, Damla Dilara vd. “Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis”. Politeknik Dergisi. Eylül2025. 1-1. https://doi.org/10.2339/politeknik.1544258.
JAMA Çakıl DD, Polat Gönüllü M, Çetinkaya C, Şahin Ö. Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis. Politeknik Dergisi. 2025;:1–1.
MLA Çakıl, Damla Dilara vd. “Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis”. Politeknik Dergisi, 2025, ss. 1-1, doi:10.2339/politeknik.1544258.
Vancouver Çakıl DD, Polat Gönüllü M, Çetinkaya C, Şahin Ö. Effects of Heat Treatment Time on Properties of 1% Fe-Doped ZnO Films Fabricated by Ultrasonic Spray Pyrolysis. Politeknik Dergisi. 2025:1-.
 
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