Many-spin effects and tunneling splittings in Mn12 magnetic molecules
arXiv:cond-mat/0006504 · doi:10.1016/S0304-8853(02)00111-7
Abstract
We calculate the tunneling splittings in a Mn magnetic molecule taking into account its internal many-spin structure. We discuss the precision and reliability of these calculations and show that restricting the basis (limiting the number of excitations taken into account) may lead to significant error (orders of magnitude) in the resulting tunneling splittings for the lowest energy levels, so that an intuitive picture of different decoupled energy scales does not hold in this case. Possible routes for further development of the many-spin model of Mn are discussed.
REVTeX4, 5 pages, 1 figure (PostScript). Version 2, substantially revised
References in corpus (2)
Cited by in corpus (11)
- Correlated band theory of spin and orbital contributions to Dzyaloshinskii-Moriya interactions
- First-principles modelling of magnetic excitations in Mn12
- Magnetic Anisotropy in the Molecular Complex V15
- Quantum Theory of Molecular Magnetism
- Inelastic neutron scattering and frequency domain magnetic resonance studies of S=4 and S=12 Mn single-molecule magnets
- Magnetic energy-level diagrams of high-spin (Mn-acetate) and low-spin (V) molecules
- Nuclear spin-lattice relaxation in ferrimagnetic clusters and chains: A contrast between zero and one dimensions
- Kramers degeneracy and relaxation in vanadium, niobium and tantalum clusters
- A DMI guide to magnets micro-world
- Thermodynamic observables of Mn12-acetate calculated for the full spin-Hamiltonian
- Macrospin approximation and quantum effects in models for magnetization reversal