Abstract
Quantum spin clusters provide a platform for the experimental study of many-body entanglement. Here we address a simple model of a single-molecule nanomagnet featuring N interacting spins in a transverse field. The field can control an entanglement transition (ET). We calculate the magnetization, low-energy gap, and neutron-scattering cross section and find that the ET has distinct signatures, detectable at temperatures as high as 5% of the interaction strength. The signatures are stronger for smaller clusters.
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CITATION STYLE
Irons, H. R., Quintanilla, J., Perring, T. G., Amico, L., & Aeppli, G. (2017). Control of entanglement transitions in quantum spin clusters. Physical Review B, 96(22). https://doi.org/10.1103/PhysRevB.96.224408
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