We have studied the Exchange Bias (EB) effect in nanocomposite films consisting of Fe nanoparticles (mean size 1.9 nm) embedded in an antiferromagnetic Mn matrix. They were produced by codeposition through a gas aggregation cluster source and molecular beam epitaxy and have different Fe volume filling fractions (2.2% and 24.8%). The exchange field, higher in the sample with higher Fe concentration (at T=5 K, Hex about 460 Oe for 24.8% and 310 Oe for 2.2% ), in both the samples decreases with increasing T, finally disappearing at T40 K. The EB properties have been studied in conjunction with results on the thermal dependence of the magnetic coercivity, zero-field-cooled and field-cooled magnetization and thermoremanence. The different Fe content strongly affects the magnetothermal properties, featuring superparamagnetic relaxation in the diluted sample and a reentrant ferromagnettype transition in the concentrated one. Hence, the EB properties of the two samples have been discussed in consideration of such peculiarities of the magnetic behavior and highlighting the role of the Mn matrix.
S. Laureti, D. Peddis, L. Del Bianco, A.M. Testa, G. Varvaro, E. Agostinelli, et al. (2012). Exchange bias and magnetothermal properties in Fe@Mn nanocomposites. JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 324, 3503-3507 [10.1016/j.jmmm.2012.02.076].
Exchange bias and magnetothermal properties in Fe@Mn nanocomposites
DEL BIANCO, LUCIA;
2012
Abstract
We have studied the Exchange Bias (EB) effect in nanocomposite films consisting of Fe nanoparticles (mean size 1.9 nm) embedded in an antiferromagnetic Mn matrix. They were produced by codeposition through a gas aggregation cluster source and molecular beam epitaxy and have different Fe volume filling fractions (2.2% and 24.8%). The exchange field, higher in the sample with higher Fe concentration (at T=5 K, Hex about 460 Oe for 24.8% and 310 Oe for 2.2% ), in both the samples decreases with increasing T, finally disappearing at T40 K. The EB properties have been studied in conjunction with results on the thermal dependence of the magnetic coercivity, zero-field-cooled and field-cooled magnetization and thermoremanence. The different Fe content strongly affects the magnetothermal properties, featuring superparamagnetic relaxation in the diluted sample and a reentrant ferromagnettype transition in the concentrated one. Hence, the EB properties of the two samples have been discussed in consideration of such peculiarities of the magnetic behavior and highlighting the role of the Mn matrix.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.