Thermodynamic Entanglement of Magnonic Condensates
H.Y.Yuan, Man-Hong Yung

TL;DR
This paper investigates the quantum entanglement properties of magnon Bose-Einstein condensates at various temperatures, revealing persistent long-range entanglement and phase transition signatures, with implications for quantum information and magnonic spintronics.
Contribution
It provides a theoretical analysis of thermodynamic entanglement in magnon condensates, highlighting its persistence and relation to phase transitions, which is novel for magnonic quantum systems.
Findings
Entanglement persists even at infinite spin separation in the condensate.
The phase transition is marked by an abrupt change in the entanglement derivative.
Experimental access to spin-spin entanglement with current technology is feasible.
Abstract
Over the last decade, significant progresses have been achieved to create Bose-Einstein condensates (BEC) of magnetic excitations, i.e., magnons, at the room temperature, which is a novel quantum many-body system with a strong spin-spin correlation, and contains potential applications in magnonic spintronics. For quantum information science, the magnonic condensates can become an attractive source of quantum entanglement, which plays a central role in most of the quantum information processing tasks. Here we theoretically study the entanglement properties of a magnon gas above and below the condensation temperature. We show that the thermodynamic entanglement of the magnons is a manifestation of the off-diagonal long-range order; the entanglement of the condensate does not vanish, even if the spins are separated by an infinitely large distance, which is fundamentally distinct from the…
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