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Journal ArticleDOI

Ordering in ferromagnets with random anisotropy.

TLDR
The temperature dependence of the (single-ion) random anisotropy strength can provide a plausible explanation for certain classes of reentrant phenomena and susceptibility cusps observed in magnetization studies.
Abstract
We summarize and extend our study (using real-space response and correlation functions) of the properties of a continuous-symmetry ferromagnet with random anisotropy, distinguishing between the cases of weak and strong random anisotropy. For the weak-anisotropy case we find three different magnetic regimes, according to the strength of the external magnetic field H. In zero H, the net magnetization is zero, although the ferromagnetic correlation length (FCL) is large. We call a ferromagnet in this first regime a correlated spin glass (CSG). It has a very large magnetic susceptibility, and hence a relatively small coherent anisotropy converts it into a nearly typical ferromagnetic domain structure. Also, a relatively small magnetic field nearly aligns the CSG, producing the second regime, which we call a ferromagnet with wandering axis (FWA). The FWA is a slightly noncollinear structure in which the tipping of the magnetization with respect to the field varies over the system. The tipping angle is correlated over a (field-dependent) correlation length which is smaller than the FCL of the CSG. As the field increases the correlation length in the FWA decreases, until the third regime is reached, wherein the tipping angles (which are smaller than in the FWA) are completely uncorrelated from site to site. We obtain the magnetization or susceptibility (as appropriate) for each of these three regimes. We also show that the temperature dependence of the (single-ion) random anisotropy strength can provide a plausible explanation for certain classes of reentrant phenomena and susceptibility cusps observed in magnetization studies. Neutron scattering studies appear to be consistent with the predicted ${H}^{\mathrm{\ensuremath{-}}1/2}$ dependence of the FCL in the FWA regime, and display the expected rise of the FCL in the CSG regime as the random anisotropy strength decreases with increasing temperature.

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Citations
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Journal ArticleDOI

The effect of Fe substitution on the magnetization behavior at low temperatures in amorphous FexNi80-xB12Si8 ribbons (x = 0.10 to 16)

Said El Ouahbi, +1 more
- 24 Aug 2022 - 
TL;DR: In this paper , the spin wave theory was used to examine the magnetism at low temperatures and certain important parameters were determined, such as the constant D (SW stiffness) and the distance between interatomic transition metals.
Journal ArticleDOI

Re-entrant behaviour in a random anisotropy magnet

TL;DR: Amorphous Gd 7 − x Dy x Ni 3 is a model random anisotropy system in which the exchange J can be varied whilst maintaining a constant ion anisotropic D as discussed by the authors.
Journal ArticleDOI

Magnetic correlations in random anisotropy magnets: a spin wave approach

TL;DR: In this article, a modified version of the spin-wave approximation is devised to calculate the zero-point and finite-temperature contributions to the spin correlation functions (SCF) and small wavevector neutron scattering structure factors (SF), longitudinal and transverse to a magnetic field, H, for random magnetic anisotropy (RMA) magnets, in the quasi-saturated regime.
Journal ArticleDOI

Mechanism of phase structure modulating damping in Fe73Ga27 alloy

TL;DR: In this paper , the phase structure of Fe73Ga27 alloy was regulated by homogenization + aging treatment, and the results showed that the alloy with modified-D03 phase has higher damping performance at lower amplitudes and the damping peak is nearly 1.3 times that of only solution-treated alloy.
Book ChapterDOI

Random Anisotropy in Magnetic Materials

TL;DR: In this paper, the effects of random anisotropy on the magnetic properties of ferromagnets were studied and a model of random multiaxial anisotropic magnetics which gives rise to a discrete set of easy directions in space is discussed.
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