Thermodynamic perturbation theory for dipolar superparamagnets
arXiv:cond-mat/0101287 · doi:10.1103/PhysRevB.64.174416
Abstract
Thermodynamic perturbation theory is employed to derive analytical expressions for the equilibrium linear susceptibility and specific heat of lattices of anisotropic classical spins weakly coupled by the dipole-dipole interaction. The calculation is carried out to the second order in the coupling constant over the temperature, while the single-spin anisotropy is treated exactly. The temperature range of applicability of the results is, for weak anisotropy (A/kT << 1), similar to that of ordinary high-temperature expansions, but for moderately and strongly anisotropic spins (A/kT > 1) it can extend down to the temperatures where the superparamagnetic blocking takes place (A/kT \sim 25), provided only the interaction strength is weak enough. Besides, taking exactly the anisotropy into account, the results describe as particular cases the effects of the interactions on isotropic (A = 0) as well as strongly anisotropic (A \to \infty) systems (discrete orientation model and plane rotators).
15 pages, 3 figures
References in corpus (1)
Cited by in corpus (19)
- Magnetic relaxation of a system of superparamagnetic particles weakly coupled by dipole-dipole interactions
- AC susceptibility as a tool to probe the dipolar interaction in magnetic nanoparticles
- Models for the magnetic ac susceptibility of granular superferromagnetic CoFe/AlO
- Magnetically Multiplexed Heating of Single Domain Nanoparticles
- Magnetic properties of polypyrrole - coated iron oxide nanoparticles
- Interplay between surface anisotropy and dipolar interactions in an assembly of nanomagnets
- Effects of dipolar interactions on the zero-field-cooled magnetization of a nanoparticle assembly
- Magnetization of nanomagnet assemblies: Effects of anisotropy and dipolar interactions
- Structural and Magnetic Properties of CoO-Pt core-shell nanoparticles
- Equilibrium properties of assembly of interacting superparamagnetic nanoparticles
- AC susceptibility of an assembly of nanomagnets: combined effects of surface anisotropy and dipolar interactions
- Size and polydispersity effect on the magnetization of densely packed magnetic nanoparticles
- Nonlinear response of superparamagnets with finite damping: an analytical approach
- Effect of dipolar interactions and DC magnetic field on the specific absorption rate of an array of magnetic nanoparticles
- Nonlinear response of single-molecule nanomagnets: equilibrium and dynamical
- Anisotropy-axis orientation effect on the magnetization of γ-Fe2O3 frozen ferrofluid
- Ferromagnetic resonance of a magnetic dimer with dipolar coupling
- Ferromagnetic resonance of a two-dimensional array of nanomagnets: Effects of surface anisotropy and dipolar interactions
- Single-particle versus collective effects in assemblies of nanomagnets: screening