Relaxation of the collective magnetization of a dense 3D array of interacting dipolar S=3 atoms
arXiv:2005.13487 · doi:10.1103/PhysRevLett.125.143401
Abstract
We report on measurements of the dynamics of the collective spin length (total magnetization) and spin populations in an almost unit filled lattice system comprising about 10^4 spin S=3 chromium atoms, under the effect of dipolar interactions. The observed spin population dynamics is unaffected by the use of a spin echo, and fully consistent with numerical simulations of the S=3 XXZ spin model. On the contrary, the observed spin length decays slower than in simulations, and surprisingly reaches a small but nonzero asymptotic value within the longest timescale. Our findings show that spin coherences are sensitive probes to systematic effects affecting quantum many-body behavior that cannot be diagnosed by merely measuring spin populations.
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References in corpus (9)
- Probing many-body dynamics on a 51-atom quantum simulator
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Observation of mesoscopic crystalline structures in a two-dimensional Rydberg gas
- Cold molecules: Progress in Quantum Engineering of Chemistry and Quantum Matter
- Dynamical crystallization in a low-dimensional Rydberg gas
- Detecting multiparticle entanglement of Dicke states
- Many-Body Quantum Spin Dynamics with Monte Carlo Trajectories on a Discrete Phase Space
- Multi-spin dynamics of the solid-state NMR Free Induction Decay
- Can Spinor Dipolar Effects be Observed in Bose-Einstein Condensates?
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