Data di Pubblicazione:
2023
Abstract:
Ferromagnetism is an iconic example of a first-order phase transition taking place in spatially extended
systems and is characterized by hysteresis and the formation of domain walls. We demonstrate that an
extended atomic superfluid in the presence of a coherent coupling between two internal states exhibits a
quantum phase transition from a paramagnetic to a ferromagnetic state. The nature of the transition is
experimentally assessed by looking at the phase diagram as a function of the control parameters, at
hysteresis phenomena, and at the magnetic susceptibility and the magnetization fluctuations around the
critical point. We show that the observed features are in good agreement with mean-field calculations.
Additionally, we develop experimental protocols to deterministically generate domain walls that separate
spatial regions of opposite magnetization in the ferromagnetic state. Thanks to the enhanced coherence
properties of our atomic superfluid system compared to standard condensed matter systems, our results
open the way toward the study of different aspects of the relaxation dynamics in isolated coherent manybody
quantum systems.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
atomic and molecular physics; magnetism; superfluidity
Elenco autori:
Ferrari, Gabriele; Cominotti, Riccardo; Berti, Anna; Rogora, Chiara; Lamporesi, Giacomo; Zenesini, Alessandro; Carusotto, Iacopo; Recati, Alessio
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