DocumentCode
1319962
Title
Magnetic and Magnetocaloric Properties of LaFe
(Si
Al
Author
Barcza, A. ; Zellmann, V. ; Zapf, Michael ; Elwert, T. ; Sommer, P. ; Katter, M.
Author_Institution
Vacuumschmelze GmbH & Co. KG, Hanau, Germany
Volume
48
Issue
11
fYear
2012
Firstpage
4066
Lastpage
4069
Abstract
The influence of aluminum on the magnetic and magnetocaloric properties of LaFe13-xSix alloys is investigated. For this purpose the magnetic phase diagrams of three quasi-ternary alloy series of LaFe13-x(Si1-wAlw)x with x = 1.14, 1.43, and 1.71 are presented. Samples with high iron-content (x = 1.14) and high aluminum-content show antiferromagnetic (AFM) ordering which changes over to ferromagnetic (FM) ordering as the aluminum-content is decreased. For intermediate Si- and Al-contents samples show both low temperature FM ordering and higher temperature AFM ordering. As the overall iron-content is decreased ( x = 1.43, and 1.71) FM ordering dominates the phase diagram. Upon hydrogenation all samples become ferromagnetic and transition temperatures are increased by about 150 K. A detailed analysis of the hydrogen content shows that aluminum-rich samples take up more hydrogen compared to the silicon-rich samples. This can be linked to larger interstitial voids resulting from the lattice expansion when Si is replaced with Al. The isothermal entropy change of aluminum-substituted alloys is always lower than the one of the silicon-variants at the same iron concentration.
Keywords
aluminium alloys; aluminium compounds; antiferromagnetic materials; entropy; ferromagnetic materials; ferromagnetic-antiferromagnetic transitions; hydrogenation; interstitials; iron alloys; iron compounds; lanthanum alloys; lanthanum compounds; magnetic transition temperature; magnetisation; magnetocaloric effects; silicon alloys; silicon compounds; voids (solid); LaFe13-x(Si1-wAlw)x; LaFe13-x(Si1-wAlw)xH; antiferromagnetic ordering; antiferromagnetic-ferromagnetic transition; ferromagnetic ordering; hydrogenation; interstitial voids; isothermal entropy; lattice expansion; magnetic phase diagrams; magnetic properties; magnetocaloric properties; quasiternary alloy; transition temperatures; Compounds; Hydrogen; Magnetometers; Magnetosphere; Metals; Silicon; Temperature measurement; La-Fe-Si; magnetic phase diagrams; magnetocaloric effect; powder metallurgy;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2012.2196987
Filename
6332556
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