Effect of an uniaxial single-ion anisotropy on the quantum and thermal entanglement of a mixed spin-(1/2,) Heisenberg dimer
arXiv:2107.14620 · doi:10.1016/j.jmmm.2021.168799
Abstract
Exact analytical diagonalization is used to study the bipartite entanglement of the antiferromagnetic mixed spin-(1/2,) Heisenberg dimer (MSHD) with the help of negativity. Under the assumption of uniaxial single-ion anisotropy affecting higher spin- () entities only, the ground-state degeneracy is partially lifted and the ground state is two-fold degenerate with the total magnetization per dimer . It is shown that the largest quantum entanglement is reached for the antiferromagnetic ground state of MSHD with arbitrary half-odd-integer spins , regardless of the exchange and single-ion anisotropies. Contrary to this, the degree of a quantum entanglement in MSHD with an integer spin for the easy-plane single-ion anisotropy, exhibits an increasing tendency with an obvious spin- driven crossing point. It is shown that the increasing spin magnitude is a crucial driving mechanism for an enhancement of a threshold temperature above which the thermal entanglement vanishes. The easy-plane single-ion anisotropy together with an enlargement of the spin- magnitude is other significant driving mechanism for an enhancement of the thermal entanglement in MSHD.
4 pages, 4 figures
References in corpus (1)
Cited by in corpus (5)
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- Quantum correlations in general qubit-qudit axially symmetric states
- Quantum correlations versus spin magnitude: Transition to the classical limit