Out-of-Plane and In-Plane Magnetization Behavior of Dipolar Interacting FeNi Nanoislands around the Percolation Threshold

Author:

Stupakov A.1,Bagdinov A. V.2,Prokhorov V. V.3,Bagdinova A. N.2,Demikhov E. I.2,Dejneka A.1,Kugel K. I.4,Gorbatsevich A. A.2,Pudonin F. A.2,Kovaleva N. N.125ORCID

Affiliation:

1. Institute of Physics, ASCR, Na Slovance 2, 18221 Prague, Czech Republic

2. Lebedev Physical Institute, RAS, Leninsky Prosp. 53, Moscow 119991, Russia

3. Frumkin Institute of Physical Chemistry and Electrochemistry, RAS, Leninsky Prosp. 31, Moscow 119991, Russia

4. Institute for Theoretical and Applied Electrodynamics, RAS, Izhorskaya Str. 13, Moscow 125412, Russia

5. Department of Physics, Loughborough University, Leicestershire LE11 3TU, UK

Abstract

Magnetic properties of inhomogeneous nanoisland FeNi films were studied by SQUID magnetometry. The FeNi films with nominal thickness ranging from 0.6 to 2.0 nm were deposited by rf sputtering on Sitall glass substrates and covered by a protecting Al2O3 layer on the top. The SQUID data indicate pronounced irreversibility behavior for the out-of-plane temperature-dependent magnetization response (measured at H100 Oe) using zero-field cooling (ZFC) and field-cooled warming (FCW) after the applied dc magnetizing field Hm2 T for the FeNi samples with nominal thickness 1.1 nm d1.8 nm, below the percolation threshold. The positive difference between the FCW and ZFC data identifies two irreversibility temperature scales, TB50 K and T200 K, which can be associated with the superparamagnetic and superferromagnetic behavior in inhomogeneous nanoisland FeNi films, respectively. However, above the film percolation threshold, we observed a crossover from the out-of-plane to in-plane magnetization orientation. Here, the in-plane FCW-ZFC difference implies negative remanent magnetization response in the temperature range TBTT. The observed magnetization properties can be associated with the presence of the superferromagnetic phase in self-assembled clusters of quasi-2D metallic magnetic FeNi nanoislands.

Funder

Czech Science Foundation GA CR

Publisher

Hindawi Limited

Subject

General Materials Science

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