DocumentCode :
1532156
Title :
High field induced magnetic anisotropy of Al-substituted erbium iron garnet single crystals
Author :
Ostoréro, Jean ; Guillot, Maurice
Author_Institution :
CNRS, Thiais, France
Volume :
37
Issue :
4
fYear :
2001
fDate :
7/1/2001 12:00:00 AM
Firstpage :
2441
Lastpage :
2444
Abstract :
Magnetic properties of garnet single crystals Er3Fe5-xAlxO12 (z=0.35 and 0.55) are reported under high magnetic field up to 230 kOe in the 4 K-300 K temperature range. The compensation temperature Tcomp is shifted to higher temperature for increasing Al content: Tcomp =80 K, 125 K and 152 K for z=0, 0.35 and 0.55 respectively. In the spontaneous state, the magnetic anisotropy is at most 5% in the 4 K-30 K temperature zone and weaker or absent at higher temperatures. [100] remains the “easy” axis for both Al contents. Using the Dionne-refined Neel model of ferrimagnetic garnets with Al3+ ions located in tetrahedral sites, the calculated temperature dependences of the spontaneous magnetization are in good agreement with experimental values. The strongly field dependent magnetic anisotropy of the garnets is important (up to 20%) only at low temperature (T<50 K). For both Al contents, the magnetic field stabilizes [100] as the “easy” axis. Furthermore, when H<30 kOe, Al substitution enhances [100] as the “easy” axis as compared to pure ErIG. Below Tcomp in the high magnetic field zone (H>150 kOe), the onset of the usual canted magnetic phase takes place for H applied parallel to the [111] crystallographic axis
Keywords :
canted spin arrangements; dilute magnetic materials; erbium compounds; garnets; induced anisotropy (magnetic); magnetic transition temperature; spontaneous magnetisation; 4 to 300 K; Dionne-refined Neel model; Er3(FeAl)5O12; Er3Fe5-xAlxO12; aluminium substitution; canted magnetic phase; compensation temperature; diamagnetic dilution; easy axis; erbium iron garnet single crystal; ferrimagnetic material; high field induced magnetic anisotropy; magnetic field; magnetic properties; spontaneous magnetization; temperature dependence; Crystals; Erbium; Ferrimagnetic materials; Garnets; Iron; Magnetic anisotropy; Magnetic fields; Magnetic properties; Temperature dependence; Temperature distribution;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.951197
Filename :
951197
Link To Document :
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