Influence of Tb on easy magnetization direction and magnetostriction of ferromagnetic Laves phase GdFe2 compounds
Adil Murtaza, Sen Yang(杨森), Chao Zhou(周超), Xiaoping Song(宋晓平)
School of Science, MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, State Key Laboratory for Mechanical Behaviour of Materials, Xi'an Jiaotong University, Xi'an 710049, China
The crystal structure, magnetization, and spontaneous magnetostriction of ferromagnetic Laves phase GdFe2 compound have been investigated. High resolution synchrotron x-ray diffraction (XRD) analysis shows that GdFe2 has a lower cubic symmetry with easy magnetization direction (EMD) along [100] below Curie temperature TC. The replacement of Gd with a small amount of Tb changes the EMD to [111]. The Curie temperature decreases while the field dependence of the saturation magnetization (Ms) measured in temperature range 5-300 K varies with increasing Tb concentration. Coercivity Hc increases with increasing Tb concentration and decays exponentially as temperature increases. The anisotropy in GdFe2 is so weak that some of the rare-earth substitution plays an important role in determining the easy direction of magnetization in GdFe2. The calculated magnetostrictive constant λ100 shows a small value of 37×10-6. This value agrees well with experimental data 30×10-6. Under a relatively small magnetic field, GdFe2 exhibits a V-shaped positive magnetostriction curve. When the field is further increased, the crystal exhibits a negative magnetostriction curve. This phenomenon has been discussed in term of magnetic domain switching. Furthermore, magnetostriction increases with increasing Tb concentration. Our work leads to a simple and unified mesoscopic explanation for magnetostriction in ferromagnets. It may also provide insight for developing novel functional materials.
Project supported by the National Basic Research Program of China (Grant No. 2012CB619401).
Corresponding Authors:
Adil Murtaza
E-mail: adil.xjtu@gmail.com
Cite this article:
Adil Murtaza, Sen Yang(杨森), Chao Zhou(周超), Xiaoping Song(宋晓平) Influence of Tb on easy magnetization direction and magnetostriction of ferromagnetic Laves phase GdFe2 compounds 2016 Chin. Phys. B 25 096107
[1]
Clark A E, Belson H S and Tamagawa N 1972 Phys. Lett. A 42 160
[2]
Koon N C, Williams C M and Das B N 1991 J. Magn. Magn. Mater. 100 173
[3]
Clark A E and Belson H S N 1972 Phys. Rev. B 5 3642
[4]
Koon N C, Schindler A and Carter F 1971 Phys. Lett. A 34 413
[5]
Clark A E 1974 AIP Conf. Proc. 18 1015
[6]
Samata H and Fujiwara N 1999 J. Magn. Magn. Mater. 195 376
[7]
Barbara B, Giraud J P, Lafores J, Lemaire R, Siaud E and Schweizer J 1977 Physica 86 155
[8]
Cullen J R and Clark A E 1977 Phys. Rev. B 15 4510
[9]
Clark A E 1978 Handbook on the Physics and Chemistry of Rare Earths (Schneider K A and Eyring Jr, Ed.) (Amsterdam: North-Holland)
[10]
du Tremolet de Lacheisserie E 1993 Magnetostriction: Theory and Applications of Magnetoelasticity (Florida: CRC Press)
[11]
Hathaway K B and Clark A E 1993 MRS Bulletin 18 34
[12]
Bowden G J, Bunbury D Stp, Guimaraes A P and Snyder R E 1968 J. Phys. C 1376
[13]
Atzmony U and Dariel M P 1974 Phys. Rev. B 10 2060
[14]
Barb D, Burzo E and Morariu M 1974 J. Physique Colloq. 35 C6-625
[15]
Buschow K H J 1980 Ferromagnetic Materials (Wohlfarth E P, Ed.) (Amsterdam: North-Holland) p. 297
[16]
Yang S and Ren X B 2008 Phys. Rev. B 77 014407
[17]
Ryo S and Daisuke M and Akimasa S 2015 Appl. Phys. Exp. 8 043004
[18]
Thoma D and Perepezko J 1995 J. Alloys Compd. 224 330
[19]
Shi Y G, Tang S L, Huang Y J, Lv L Y and Du Y W 2007 Appl. Phys. Lett. 90 142515
[20]
Duc N H and Brommer P E 1999 Handbook of Magnetic Materials (Buschow K H J, Ed.) (New York: Elsevier)
[21]
Gratz E and Markosyan A S 2001 J. Phys.: Condens. Matter 13 R385
[22]
Brooks M S, Nordstrom L and Johansson B 1991 Physica 172B 95
[23]
Baudelet 1990 Europhys. Lett. 13 751
[24]
Ahmadizadeh Y, Soti V, Abedi B and R 2009 Adv. Studies Theor. Phys: F 37 265
[25]
Besnus M J, Herr A and Fisher G 1971 J. Phys. F 9 745
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