Molecular Nanomagnet as Resource for Bipartite and Tripartite Quantum Entanglement and Coherence
arXiv:2407.07037 · doi:10.1103/PhysRevA.111.022605
Abstract
We investigate key quantum characteristics of the mixed spin-(1/2,1,1/2) Heisenberg trimer under the influence of an external magnetic field. Specifically, we analyze the distributions of bipartite and tripartite entanglement quantified through the respective negativities, and the -norm of coherence with the help of rigorous analytical and numerical methods. Our findings suggest that the heterotrinuclear molecular nanomagnet , which represents an experimental realization of the mixed spin-(1/2,1,1/2) Heisenberg trimer, exhibits a significant bipartite entanglement between and magnetic ions along with robust tripartite entanglement among all three constituent magnetic ions. The significant bipartite and tripartite entanglement persists even at relatively high temperatures up to and magnetic fields up to , whereby the coherence is maintained even at elevated temperatures. {It is evidenced that the aforementioned molecular complex with the magnetic core provides an intriguing quantum resource, which exhibits a star-shaped state within the singlet eigenstate at low magnetic fields and W-like state within the triplet eigenstate at moderate magnetic fields.
15 pages, 5 figures
References in corpus (11)
- Measuring Quantum Coherence with Entanglement
- Quantum Decoherence
- A classification of entanglement in three-qubit systems
- Unconventional strengthening of a bipartite entanglement of a mixed spin-(1/2,1) Heisenberg dimer achieved through Zeeman splitting
- Retrodiction beyond the Heisenberg uncertainty relation
- A Study on Thermal Quantum Resources and Probabilistic Teleportation in Spin-1/2 Heisenberg XYZ+DM+KSEA Model under Variable Zeeman Splitting
- Entangled spin clusters: some special features
- Achieving spin-squeezed states by quench dynamics in a quantum chain
- Geometrical optimization of spin clusters for the preservation of quantum coherence
- Distribution of a bipartite entanglement in a mixed spin-(1/2,1) Heisenberg tetramer
- Quantum entanglement in mixed-spin trimer: Effects of a magnetic field and heterogeneous g-factors