Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders

The effect of ball milling on the structural and magnetic properties of Nd 2Fe 14B intermetallic compound was studied by X-ray diffraction (XRD) and magnetisation measurements. The average crystallite size calculated from the XRD patterns on the powders ball milled (BM) for 40 h is seen to lie in th...

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Published in:Materials Research Innovations
Main Author: Talari M.K.; Markandeyulu G.; Prasad Rao K.
Format: Conference paper
Language:English
Published: 2011
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84055191058&doi=10.1179%2f143307511X13031890747453&partnerID=40&md5=a3f34ed1781671e6ee2add77c51a3009
id 2-s2.0-84055191058
spelling 2-s2.0-84055191058
Talari M.K.; Markandeyulu G.; Prasad Rao K.
Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
2011
Materials Research Innovations
15
SUPPL. 2
10.1179/143307511X13031890747453
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84055191058&doi=10.1179%2f143307511X13031890747453&partnerID=40&md5=a3f34ed1781671e6ee2add77c51a3009
The effect of ball milling on the structural and magnetic properties of Nd 2Fe 14B intermetallic compound was studied by X-ray diffraction (XRD) and magnetisation measurements. The average crystallite size calculated from the XRD patterns on the powders ball milled (BM) for 40 h is seen to lie in the range of 25-50 nm, whereas the particle size estimated using atomic force microscopy imaging is in the range of 40-100 nm. Magnetisation and anisotropy of BM Nd 2Fe 14B were found to decrease with increasing milling time. This was explained based on the increased defect density with milling and reduction in particle size. Using a differential scanning calorimeter, recovery and recrystallisation of the BM samples were studied during heating. The Curie temperature was found to decrease with increasing milling time. The BM samples were annealed at 1173 K for 15 min, and XRD and magnetisation studies were conducted. Mechanisms of a-Fe separation and change in intrinsic properties during milling and annealing of milled powders are discussed. © W. S. Maney & Son Ltd. 2011.

1433075X
English
Conference paper

author Talari M.K.; Markandeyulu G.; Prasad Rao K.
spellingShingle Talari M.K.; Markandeyulu G.; Prasad Rao K.
Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
author_facet Talari M.K.; Markandeyulu G.; Prasad Rao K.
author_sort Talari M.K.; Markandeyulu G.; Prasad Rao K.
title Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
title_short Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
title_full Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
title_fullStr Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
title_full_unstemmed Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
title_sort Studies on structural and magnetic properties of ball milled Nd 2Fe 14B intermetallic powders
publishDate 2011
container_title Materials Research Innovations
container_volume 15
container_issue SUPPL. 2
doi_str_mv 10.1179/143307511X13031890747453
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84055191058&doi=10.1179%2f143307511X13031890747453&partnerID=40&md5=a3f34ed1781671e6ee2add77c51a3009
description The effect of ball milling on the structural and magnetic properties of Nd 2Fe 14B intermetallic compound was studied by X-ray diffraction (XRD) and magnetisation measurements. The average crystallite size calculated from the XRD patterns on the powders ball milled (BM) for 40 h is seen to lie in the range of 25-50 nm, whereas the particle size estimated using atomic force microscopy imaging is in the range of 40-100 nm. Magnetisation and anisotropy of BM Nd 2Fe 14B were found to decrease with increasing milling time. This was explained based on the increased defect density with milling and reduction in particle size. Using a differential scanning calorimeter, recovery and recrystallisation of the BM samples were studied during heating. The Curie temperature was found to decrease with increasing milling time. The BM samples were annealed at 1173 K for 15 min, and XRD and magnetisation studies were conducted. Mechanisms of a-Fe separation and change in intrinsic properties during milling and annealing of milled powders are discussed. © W. S. Maney & Son Ltd. 2011.
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language English
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