Quantum dynamics of a macroscopic magnet operating as environment of a mechanical oscillator
Caterina Foti, Alessandro Cuccoli, Paola Verrucchi

TL;DR
This paper investigates how a macroscopic magnetic environment coupled to a quantum oscillator exhibits quantum behavior and entanglement, providing insights into the quantum-to-classical transition through an effective back-action operator.
Contribution
It introduces a formalism for analyzing the quantum dynamics of a large-spin magnetic environment coupled to a quantum oscillator, revealing an effective back-action operator as a time-dependent magnetic anisotropy.
Findings
Derived an explicit propagator for the system
Identified a time-dependent magnetic anisotropy operator
Analyzed the effects on magnet dynamics and entanglement
Abstract
We study the dynamics of a bipartite quantum system in a way such that its formal description keeps holding even if one of its parts becomes macroscopic: the problem is related with the analysis of the quantum-to-classical crossover, but our approach implies that the whole system stays genuinely quantum. Aim of the work is to understand 1) if, 2) to what extent, and possibly 3) how, the evolution of a macroscopic environment testifies to the coupling with its microscopic quantum companion. To this purpose we consider a magnetic environment made of a large number of spin-1/2 particles, coupled with a quantum mechanical oscillator, possibly in the presence of an external magnetic field. We take the value of the total environmental-spin S constant and large, which allows us to consider the environment as one single macroscopic system, and further deal with the hurdles of the spin-algebra…
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