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arXiv · cond-mat/9701030

Magnetic Field Dependence of Macroscopic Quantum Tunneling and Coherence of Ferromagnetic Particle

Abstract

We calculate the quantum tunneling rate of a ferromagnetic particle of $\sim 100 Å$ diameter in a magnetic field of arbitrary angle. We consider the magnetocrystalline anisotropy with the biaxial symmetry and that with the tetragonal symmetry. Using the spin-coherent-state path integral, we obtain approximate analytic formulas of the tunneling rates in the small $ε(=1- H/H_c)$-limit for the magnetic field normal to the easy axis ($θ_H = π/2$), for the field opposite to the initial easy axis ($θ_H = π$), and for the field at an angle between these two orientations ($π/2 << θ_H << π$). In addition, we obtain numerically the tunneling rates for the biaxial symmetry in the full range of the angle $θ_H$ of the magnetic field ($π/2 < θ_H \leq π$), for the values of ε=0.01 and 0.001.

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Gwang-Hee Kim, Dae Sung Hwang. 1997-01-07. Magnetic Field Dependence of Macroscopic Quantum Tunneling and Coherence of Ferromagnetic Particle. https://doi.org/10.1103/physrevb.55.8918

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