Structure and Magnetism of Mn5Ge3 Nanoparticles
In this work, we investigated the magnetic and structural properties of isolated Mn5Ge3 nanoparticles prepared by the cluster-beam deposition technique. Particles with sizes between 7.2 and 12.6 nm were produced by varying the argon pressure and power in the cluster gun. X-ray diffraction (XRD)and s...
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doaj-ccacc0b5497b47a894423057869135332020-11-24T23:31:21ZengMDPI AGNanomaterials2079-49912018-04-018424110.3390/nano8040241nano8040241Structure and Magnetism of Mn5Ge3 NanoparticlesOnur Tosun0Mohammed Salehi-Fashami1Balamurugan Balasubramanian2Ralph Skomski3David J. Sellmyer4George C. Hadjipanayis5Department of Physics and Astronomy, University of Delaware, Newark, DE 19711, USADepartment of Physics and Astronomy, University of Delaware, Newark, DE 19711, USADepartment of Physics and Astronomy, University of Nebraska, Lincoln, NE 68588, USADepartment of Physics and Astronomy, University of Nebraska, Lincoln, NE 68588, USADepartment of Physics and Astronomy, University of Nebraska, Lincoln, NE 68588, USADepartment of Physics and Astronomy, University of Delaware, Newark, DE 19711, USAIn this work, we investigated the magnetic and structural properties of isolated Mn5Ge3 nanoparticles prepared by the cluster-beam deposition technique. Particles with sizes between 7.2 and 12.6 nm were produced by varying the argon pressure and power in the cluster gun. X-ray diffraction (XRD)and selected area diffraction (SAD) measurements show that the nanoparticles crystallize in the hexagonal Mn5Si3-type crystal structure, which is also the structure of bulk Mn5Ge3. The temperature dependence of the magnetization shows that the as-made particles are ferromagnetic at room temperature and have slightly different Curie temperatures. Hysteresis-loop measurements show that the saturation magnetization of the nanoparticles increases significantly with particle size, varying from 31 kA/m to 172 kA/m when the particle size increases from 7.2 to 12.6 nm. The magnetocrystalline anisotropy constant K at 50 K, determined by fitting the high-field magnetization data to the law of approach to saturation, also increases with particle size, from 0.4 × 105 J/m3 to 2.9 × 105 J/m3 for the respective sizes. This trend is mirrored by the coercivity at 50 K, which increases from 0.04 T to 0.13 T. A possible explanation for the magnetization trend is a radial Ge concentration gradient.http://www.mdpi.com/2079-4991/8/4/241magnetic nanoparticlescluster depositionmagnetization |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Onur Tosun Mohammed Salehi-Fashami Balamurugan Balasubramanian Ralph Skomski David J. Sellmyer George C. Hadjipanayis |
spellingShingle |
Onur Tosun Mohammed Salehi-Fashami Balamurugan Balasubramanian Ralph Skomski David J. Sellmyer George C. Hadjipanayis Structure and Magnetism of Mn5Ge3 Nanoparticles Nanomaterials magnetic nanoparticles cluster deposition magnetization |
author_facet |
Onur Tosun Mohammed Salehi-Fashami Balamurugan Balasubramanian Ralph Skomski David J. Sellmyer George C. Hadjipanayis |
author_sort |
Onur Tosun |
title |
Structure and Magnetism of Mn5Ge3 Nanoparticles |
title_short |
Structure and Magnetism of Mn5Ge3 Nanoparticles |
title_full |
Structure and Magnetism of Mn5Ge3 Nanoparticles |
title_fullStr |
Structure and Magnetism of Mn5Ge3 Nanoparticles |
title_full_unstemmed |
Structure and Magnetism of Mn5Ge3 Nanoparticles |
title_sort |
structure and magnetism of mn5ge3 nanoparticles |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2018-04-01 |
description |
In this work, we investigated the magnetic and structural properties of isolated Mn5Ge3 nanoparticles prepared by the cluster-beam deposition technique. Particles with sizes between 7.2 and 12.6 nm were produced by varying the argon pressure and power in the cluster gun. X-ray diffraction (XRD)and selected area diffraction (SAD) measurements show that the nanoparticles crystallize in the hexagonal Mn5Si3-type crystal structure, which is also the structure of bulk Mn5Ge3. The temperature dependence of the magnetization shows that the as-made particles are ferromagnetic at room temperature and have slightly different Curie temperatures. Hysteresis-loop measurements show that the saturation magnetization of the nanoparticles increases significantly with particle size, varying from 31 kA/m to 172 kA/m when the particle size increases from 7.2 to 12.6 nm. The magnetocrystalline anisotropy constant K at 50 K, determined by fitting the high-field magnetization data to the law of approach to saturation, also increases with particle size, from 0.4 × 105 J/m3 to 2.9 × 105 J/m3 for the respective sizes. This trend is mirrored by the coercivity at 50 K, which increases from 0.04 T to 0.13 T. A possible explanation for the magnetization trend is a radial Ge concentration gradient. |
topic |
magnetic nanoparticles cluster deposition magnetization |
url |
http://www.mdpi.com/2079-4991/8/4/241 |
work_keys_str_mv |
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