Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method

In this study, we investigated the microstructure and magnetic properties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) powders prepared by the solid-state reaction method. The starting material, which consisted of ZnO, Mn, and Fe powders, were wet milled for 3 hours using high-energy...

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Main Authors: Perdamean Sebayang, Candra Kurniawan, Ignu Priyadi, Nasruddin M. N
Format: Article
Language:English
Published: Universitas Indonesia 2020-06-01
Series:Makara Journal of Science
Subjects:
zno
Online Access:https://scholarhub.ui.ac.id/cgi/viewcontent.cgi?article=1188&context=science
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spelling doaj-09f3ac9354c845ddad57da270f9d9cc92020-11-25T03:47:52ZengUniversitas IndonesiaMakara Journal of Science2339-19952356-08512020-06-012429510010.7454/mss.v24i2.11914Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method Perdamean Sebayang0Candra Kurniawan1Ignu Priyadi 2Nasruddin M. N 3Research Center for Physics, Indonesian Institute of Sciences (LIPI), Banten 15314, IndonesiaResearch Center for Physics, Indonesian Institute of Sciences (LIPI), Banten 15314, Indonesia Research Center for Physics, Indonesian Institute of Sciences (LIPI), Banten 15314, Indonesia Department of Physics, Faculty of Mathematics and Natural Sciences, Universitas Sumatra Utara, North Sumatera 20155, Indonesia In this study, we investigated the microstructure and magnetic properties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) powders prepared by the solid-state reaction method. The starting material, which consisted of ZnO, Mn, and Fe powders, were wet milled for 3 hours using high-energy milling. We then used an X-ray diffractometer (XRD), scanning electron microscope, and vibrating sample magnetometer to investigate the effects of doping and co-doping on the microstructure, morphology, and magnetic properties, respectively. The XRD results suggest that Mn and Fe ions had substituted into the ZnO matrix, as illustrated by the resulting single-phase polycrystalline hexagonal wurtzite structures. The diffraction intensity was observed to decrease as the Mn composition increased. The analysis showed that the lattice parameters decreased due to Mn2+ and Fe3+ ion substitution in the ZnO matrix. The co-doping of Mn-Fe ions in the ZnO structure enhanced the magnetic properties, particularly due to the Zn0.89Mn0.09Fe0.02O composition. The increase in the Mn dopant and Mn-Fe co-dopant concentrations strongly contributed to the improved morphology and magnetic properties. Therefore, we can conclude that the presence of Mn and Fe co-dopants in the ZnO system contributed to its magnetic properties, as confirmed by high-saturation magnetization.https://scholarhub.ui.ac.id/cgi/viewcontent.cgi?article=1188&context=science: dopanthigh-energy millingmicrostructuresolid-state reactionzno
collection DOAJ
language English
format Article
sources DOAJ
author Perdamean Sebayang
Candra Kurniawan
Ignu Priyadi
Nasruddin M. N
spellingShingle Perdamean Sebayang
Candra Kurniawan
Ignu Priyadi
Nasruddin M. N
Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
Makara Journal of Science
: dopant
high-energy milling
microstructure
solid-state reaction
zno
author_facet Perdamean Sebayang
Candra Kurniawan
Ignu Priyadi
Nasruddin M. N
author_sort Perdamean Sebayang
title Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
title_short Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
title_full Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
title_fullStr Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
title_full_unstemmed Investigation of Micr estigation of Microstructur ostructure and Magnetic Pr e and Magnetic Properties of ties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) prepared by Solid-state Reaction Method
title_sort investigation of micr estigation of microstructur ostructure and magnetic pr e and magnetic properties of ties of zn1-xmnxo and zn0.98-xmnxfe0.02o (x = 0, 0.05, and 0.09) prepared by solid-state reaction method
publisher Universitas Indonesia
series Makara Journal of Science
issn 2339-1995
2356-0851
publishDate 2020-06-01
description In this study, we investigated the microstructure and magnetic properties of Zn1-xMnxO and Zn0.98-xMnxFe0.02O (x = 0, 0.05, and 0.09) powders prepared by the solid-state reaction method. The starting material, which consisted of ZnO, Mn, and Fe powders, were wet milled for 3 hours using high-energy milling. We then used an X-ray diffractometer (XRD), scanning electron microscope, and vibrating sample magnetometer to investigate the effects of doping and co-doping on the microstructure, morphology, and magnetic properties, respectively. The XRD results suggest that Mn and Fe ions had substituted into the ZnO matrix, as illustrated by the resulting single-phase polycrystalline hexagonal wurtzite structures. The diffraction intensity was observed to decrease as the Mn composition increased. The analysis showed that the lattice parameters decreased due to Mn2+ and Fe3+ ion substitution in the ZnO matrix. The co-doping of Mn-Fe ions in the ZnO structure enhanced the magnetic properties, particularly due to the Zn0.89Mn0.09Fe0.02O composition. The increase in the Mn dopant and Mn-Fe co-dopant concentrations strongly contributed to the improved morphology and magnetic properties. Therefore, we can conclude that the presence of Mn and Fe co-dopants in the ZnO system contributed to its magnetic properties, as confirmed by high-saturation magnetization.
topic : dopant
high-energy milling
microstructure
solid-state reaction
zno
url https://scholarhub.ui.ac.id/cgi/viewcontent.cgi?article=1188&context=science
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