Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film
This research paper presents a comprehensive investigation into the synthesis and characterization of manganese (Mn)-doped potassium sodium niobite (KNN) thin films with different concentration of manganese starting from 0.1%, 0.3%, 0.5%, 0.7% and 0.9% prepared via the sol-gel method. The introducti...
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Microscopy Society of Malaysia
2024
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Online Access: | http://eprints.utem.edu.my/id/eprint/27807/2/0016605082024224120962.pdf http://eprints.utem.edu.my/id/eprint/27807/ https://malaysianjournalofmicroscopy.org/ojs/index.php/mjm/article/view/856/458 |
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my.utem.eprints.278072024-10-09T16:11:07Z http://eprints.utem.edu.my/id/eprint/27807/ Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film Abd Rashid, Mohd Warikh Azlan, Umar Al-Amani Shamsuri, Siti Rahmah Mohamad Dom, Adibah Haneem Azman, Muhd. Afiq Hafizuddin Kasim, Shah Rizal Mat Harttar@Mohd Hatta, Maziati Akmal This research paper presents a comprehensive investigation into the synthesis and characterization of manganese (Mn)-doped potassium sodium niobite (KNN) thin films with different concentration of manganese starting from 0.1%, 0.3%, 0.5%, 0.7% and 0.9% prepared via the sol-gel method. The introduction of Mn dopants with different concentrations into KNN thin films offers a pathway to further enhance their performance. The Mn-doped KNN thin films were synthesized using the chemical solution deposition method, a versatile technique known for its ability to produce uniform, high quality films. X-ray diffraction (XRD) analysis was employed to investigate the crystalline structure of the Mn-doped KNN thin films. The XRD analysis results show that the fabrication of Mn-doped KNN thin films exhibit an orthorhombic crystal structure. XRD peaks show that the occupancy of KNN thin films which indicate the synthesis was successfully done. Field-emission scanning electron microscopy (FESEM) was employed to examine the surface morphology and microstructure of the thin films. 0.5% Mn-doped KNN thin films show the best result of a uniform grain size and dense grain growth. The electrical properties of the Mn-doped KNN thin films were evaluated through resistivity measurements. Resistivity analysis showed that 0.3% Mn-doped KNN thin films have the lowest resistivity among the other concentrations. Microscopy Society of Malaysia 2024 Article PeerReviewed text en http://eprints.utem.edu.my/id/eprint/27807/2/0016605082024224120962.pdf Abd Rashid, Mohd Warikh and Azlan, Umar Al-Amani and Shamsuri, Siti Rahmah and Mohamad Dom, Adibah Haneem and Azman, Muhd. Afiq Hafizuddin and Kasim, Shah Rizal and Mat Harttar@Mohd Hatta, Maziati Akmal (2024) Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film. Malaysian Journal of Microscopy, 20 (1). pp. 317-327. ISSN 2600-7444 https://malaysianjournalofmicroscopy.org/ojs/index.php/mjm/article/view/856/458 |
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This research paper presents a comprehensive investigation into the synthesis and characterization of manganese (Mn)-doped potassium sodium niobite (KNN) thin films with different concentration of manganese starting from 0.1%, 0.3%, 0.5%, 0.7% and 0.9% prepared via the sol-gel method. The introduction of Mn dopants with different concentrations into KNN thin films offers a pathway to further enhance their performance. The Mn-doped KNN thin films were synthesized using the chemical solution deposition method, a versatile technique known for its ability to produce uniform, high quality films. X-ray diffraction (XRD) analysis was employed to investigate the crystalline structure of the Mn-doped KNN thin films. The XRD analysis results show that the fabrication of Mn-doped KNN thin films exhibit an orthorhombic crystal structure. XRD peaks show that the occupancy of KNN thin films which indicate the synthesis was successfully done. Field-emission scanning electron microscopy (FESEM) was employed to examine the surface morphology and microstructure of the thin films. 0.5% Mn-doped KNN thin films show the best result of a uniform grain size and dense grain growth. The electrical properties of the Mn-doped KNN thin films were evaluated through resistivity measurements. Resistivity analysis showed that 0.3% Mn-doped KNN thin films have the lowest resistivity among the other concentrations. |
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Article |
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Abd Rashid, Mohd Warikh Azlan, Umar Al-Amani Shamsuri, Siti Rahmah Mohamad Dom, Adibah Haneem Azman, Muhd. Afiq Hafizuddin Kasim, Shah Rizal Mat Harttar@Mohd Hatta, Maziati Akmal |
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Abd Rashid, Mohd Warikh Azlan, Umar Al-Amani Shamsuri, Siti Rahmah Mohamad Dom, Adibah Haneem Azman, Muhd. Afiq Hafizuddin Kasim, Shah Rizal Mat Harttar@Mohd Hatta, Maziati Akmal Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
author_facet |
Abd Rashid, Mohd Warikh Azlan, Umar Al-Amani Shamsuri, Siti Rahmah Mohamad Dom, Adibah Haneem Azman, Muhd. Afiq Hafizuddin Kasim, Shah Rizal Mat Harttar@Mohd Hatta, Maziati Akmal |
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Abd Rashid, Mohd Warikh |
title |
Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
title_short |
Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
title_full |
Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
title_fullStr |
Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
title_full_unstemmed |
Effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
title_sort |
effect of manganese dopant on the structure and electrical properties of potassium sodium niobate thin film |
publisher |
Microscopy Society of Malaysia |
publishDate |
2024 |
url |
http://eprints.utem.edu.my/id/eprint/27807/2/0016605082024224120962.pdf http://eprints.utem.edu.my/id/eprint/27807/ https://malaysianjournalofmicroscopy.org/ojs/index.php/mjm/article/view/856/458 |
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1814061430925688832 |
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13.211869 |