Intermolecular mechanism for multiple maxima in molecular dynamic susceptibility
arXiv:1712.09135 · doi:10.1103/PhysRevB.98.174418
Abstract
A simple two-level system is introduced to demonstrate the existence of the intermolecular mechanism of the appearance/disappearance of multiple maxima in molecular dynamic susceptibility at low temperature. With minimum two relaxation processes, quantum tunneling induced by the nuclear spin bath and the direct process due to the spin-phonon interaction, we prove that the existence of a sufficiently wide dipolar field distribution in the experimental sample is the main cause of this phenomenon in zero or weak applied dc field. The correlations between the phenomenon and the applied dc field, temperature, or magnetic dilution of the sample are also investigated. Application to several experimental systems has shown a good agreement between the proposed theory and experiments. Cases with more complex multiplet spectrum, more relaxation processes,and possibility of more maxima in the molecular dynamic susceptibility are discussed.
13 pages, 9 figures, 1 Supplementary Material
References in corpus (6)
- Molecular Spin Qudits for Quantum Algorithms
- Operating Quantum States in Single Magnetic Molecules: Implementation of Grover's Quantum Algorithm
- Multiple relaxation times in single-molecule magnets
- Spin-lattice relaxation of magnetic centers in molecular crystals at low temperature
- Incoherent Landau-Zener-Stuckelberg Transitions in Single-Molecule Magnets
- Two-phonon spin-lattice relaxation of rigid atomic clusters