Title :
Magnetic force microscopy characterization of unusual magnetic coupling in an extraordinarily responsive magnetic material
Author :
Leib, J.S. ; Lo, C.C.H. ; Snyder, J.E. ; Jiles, D.C. ; Pecharsky, V.K. ; Schlagel, D.S. ; Lograsso, T.A.
Author_Institution :
Ames Lab., Iowa State Univ., Ames, IA, USA
fDate :
9/1/2002 12:00:00 AM
Abstract :
Gd5(Si2Ge2) and related compounds with similar (nearly equal Si-to-Ge ratio) composition exhibit large magnetoresponsive properties including a giant magnetocaloric effect, colossal magnetostriction, and giant magnetoresistance near a structural-magnetic phase transition that occurs close to ambient temperature. Magnetic force microscopy (MFM) and vibrating sample magnetometry (VSM) measurements on single-crystal samples of these materials indicate that the easy magnetization axis is the b-axis of the orthorhombic magnetic phase-perpendicular to the slabs. In fact, the MFM image of a surface perpendicular to the b-axis is quite similar to domain patterns perpendicular to the easy axis of Co and other highly anisotropic magnetic materials. Therefore, it appears that Gd5(SixGe1-x)4 may require modeling similar to other multilayers and superlattices of rare-earth metals with one or more nonmagnetic constituents that exhibit long-range magnetic order across nonmagnetic layers. Many of the important phenomena of these Gd compounds could be explained by the interaction of localized Gd magnetic moments across the covalent bonding between atomic slabs, adapting models already suggested for other similar materials.
Keywords :
ferromagnetic materials; gadolinium alloys; germanium alloys; giant magnetoresistance; local moments; magnetic anisotropy; magnetic domains; magnetic force microscopy; magnetic hysteresis; magnetic structure; magnetocaloric effects; magnetostriction; silicon alloys; Gd5(Si2Ge2); Gd5(SixGe1-x)4; MFM; VSM hysteresis loops; anisotropy coefficients; colossal magnetostriction; covalent bonding; domain patterns; easy magnetization axis; extraordinarily responsive magnetic material; giant magnetoresistance; large magnetoresponsive properties; localized Gd magnetic moments; long-range magnetic order; magnetic force microscopy characterization; magnetocaloric effect; nonmagnetic layers; orthorhombic magnetic phase; single-crystal samples; structural-magnetic phase transition; uniaxial anisotropy; unusual magnetic coupling; vibrating sample magnetometry; Couplings; Magnetic anisotropy; Magnetic domains; Magnetic force microscopy; Magnetic forces; Magnetic materials; Magnetostriction; Metallic superlattices; Perpendicular magnetic anisotropy; Slabs;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2002.803587