Temperature dependence of ferromagnetic resonance as induced by NiO pinning layers
- 1 June 1998
- journal article
- research article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 83 (11) , 6819-6821
- https://doi.org/10.1063/1.367662
Abstract
Ferromagnetic resonance (FMR) experiments have been conducted near 9.5 GHz on permalloy (Py) thin films which are components of spin valves and related structures. These so-called giant magnetoresistancestructures often use antiferromagnetic NiO to achieve pinning of one magnetic layer.Magnetic anisotropies acting on these pinned layers were deduced by observing their resonances for fields perpendicular to and in the sample plane. We used data taken from 4 to 600 K to identify potential mechanisms of pinning, anisotropy, and linewidth. The anisotropic exchange pinning and an isotropic downward FMR shift vanish at a blocking temperature well below the bulk Neél temperature of NiO. The strong temperature dependencies of the isotropic shift and linewidth may reflect the presence of different spin pinning subsystems and the different time scales of the FMR and low frequency or static measurements.This publication has 8 references indexed in Scilit:
- Interfacial Uncompensated Antiferromagnetic Spins: Role in Unidirectional Anisotropy in PolycrystallineBilayersPhysical Review Letters, 1997
- Calculations of Exchange Bias in Thin Films with Ferromagnetic/Antiferromagnetic InterfacesPhysical Review Letters, 1997
- Nanostructural considerations in giant magnetoresistive Co-Cu-based symmetric spin valvesPhysical Review B, 1997
- Effect of surface layers on ferromagnetic resonance in thin Fe films: Ni, Co, Si, and YBa2Cu3O7−δJournal of Applied Physics, 1994
- Properties of superconductor-ferromagnet bilayers: -Fe and -PermalloyPhysical Review B, 1993
- CoO-NiO superlattices: Interlayer interactions and exchange anisotropy with Ni81Fe19 (invited)Journal of Applied Physics, 1993
- Random-field model of exchange anisotropy at rough ferromagnetic-antiferromagnetic interfacesPhysical Review B, 1987
- Linewidth and Relaxation Processes for the Main Resonance in the Spin-Wave Spectra of Ni–Fe Alloy FilmsJournal of Applied Physics, 1968