Magnetic Rigid Rotor in the Quantum Regime: Theoretical Toolbox
arXiv:1511.04022 · doi:10.1103/PhysRevB.93.054427
Abstract
We describe the quantum dynamics of a magnetic rigid rotor in the mesoscopic scale where the Einstein-De Haas effect is predominant. In particular, we consider a single-domain magnetic nanoparticle with uniaxial anisotropy in a magnetic trap. Starting from the basic Hamiltonian of the system under the macrospin approximation, we derive a bosonized Hamiltonian describing the center-of-mass motion, the total angular momentum, and the macrospin degrees of freedom of the particle treated as a rigid body. This bosonized Hamiltonian can be approximated by a simple quadratic Hamiltonian that captures the rich physics of a nanomagnet tightly confined in position, nearly not spinning, and with its macrospin anti-aligned to the magnetic field. The theoretical tools derived and used here can be applied to other quantum mechanical rigid rotors.
Typos found in the published version are corrected. 15 pages, 3 figures and 3 tables
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Cited by in corpus (24)
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