Quantum simulation of an extended Dicke model with a magnetic solid

Author:

Marquez Peraca Nicolas,Li XinweiORCID,Moya Jaime M.ORCID,Hayashida Kenji,Kim DasomORCID,Ma XiaoxuanORCID,Neubauer Kelly J.,Fallas Padilla DiegoORCID,Huang Chien-Lung,Dai PengchengORCID,Nevidomskyy Andriy H.ORCID,Pu HanORCID,Morosan EmiliaORCID,Cao ShixunORCID,Bamba MotoakiORCID,Kono JunichiroORCID

Abstract

AbstractThe Dicke model describes the cooperative interaction of an ensemble of two-level atoms with a single-mode photonic field and exhibits a quantum phase transition as a function of light–matter coupling strength. Extending this model by incorporating short-range atom–atom interactions makes the problem intractable but is expected to produce new physical phenomena and phases. Here, we simulate such an extended Dicke model using a crystal of ErFeO3, where the role of atoms (photons) is played by Er3+ spins (Fe3+ magnons). Through terahertz spectroscopy and magnetocaloric effect measurements as a function of temperature and magnetic field, we demonstrated the existence of a novel atomically ordered phase in addition to the superradiant and normal phases that are expected from the standard Dicke model. Further, we elucidated the nature of the phase boundaries in the temperature–magnetic-field phase diagram, identifying both first-order and second-order phase transitions. These results lay the foundation for studying multiatomic quantum optics models using well-characterized many-body solid-state systems.

Funder

United States Department of Defense | United States Army | U.S. Army Research, Development and Engineering Command | Army Research Office

W. M. Keck Foundation

Gordon and Betty Moore Foundation

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

NSF | Directorate for Mathematical & Physical Sciences | Division of Materials Research

DOE | SC | Basic Energy Sciences

Publisher

Springer Science and Business Media LLC

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