Low-spin ground state of the giant single-molecule magnets {Mn} and {Mn}
arXiv:2401.07552 · doi:10.1103/PhysRevB.111.075143
Abstract
The single-molecule magnets {Mn} and {Mn} are characterized by a 14-site unit cell with spin sites arranged in a circular geometry. Experimentally, these systems exhibit a magnetic ground state with a notably low total spin . Up to now, this low-spin ground state has been up difficult to describe theoretically due to the complexity of the quantum Heisenberg model for such a large system. In this work, we fill this gap and demonstrate that the ground state of {Mn} and {Mn} is in fact governed by a small, finite in quantitative agreement with the experiment. We employ accurate, large-scale SU(2)-symmetric density-matrix renormalization group calculations for a quantum Heisenberg model with previously published exchange parameters obtained by density-functional theory. We do not find a low-spin state for the same parameters and and thus propose that frustrated systems with are inherently prone to weak ferromagnetic interactions. This could account for the prevalence of similar low-spin Mn-based single-molecule magnets. Finally, we compute the full magnetization curve and find wide plateaus at 10/14, 11/14, 12/14 and 13/14 of the saturation, which can be traced back to nearly-independent 3-site clusters with broken inter-cluster bonds.
References in corpus (8)
- A Strictly Single-Site DMRG Algorithm with Subspace Expansion
- Exact eigenstates and macroscopic magnetization jumps in strongly frustrated spin lattices
- Exchange Interactions and High-Energy Spin States in Mn_12-acetate
- Large-scale numerical investigations of the antiferromagnetic Heisenberg icosidodecahedron
- Enhanced symmetry-breaking tendencies in the pyrochlore antiferromagnet
- Quantum spin spiral ground state of the ferrimagnetic sawtooth chain
- Magnetic properties of a capped kagome molecule with 60 quantum spins
- Noncoplanar and chiral spin states on the way towards Néel ordering in fullerene Heisenberg models