Influence of the external pressure on the quantum correlations of molecular magnets
arXiv:1612.00357 · doi:10.1209/0295-5075/117/20004
Abstract
The study of quantum correlations in solid state systems is a large avenue for research and their detection and manipulation are an actual challenge to overcome. In this context, we show by using first-principles calculations on the prototype material KNaCuSiO that the degree of quantum correlations in this spin cluster system can be managed by external hydrostatic pressure. Our results open the doors for research in detection and manipulation of quantum correlations in magnetic systems with promising applications in quantum information science.
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Cited by in corpus (4)
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- Effect of induced transition on the quantum entanglement and coherence in two-coupled double quantum dots system
- Geometric quantum discord and coherence in a dipolar interacting magnetic system
- Simulating thermodynamic properties of dinuclear metal complexes using Variational Quantum Algorithms