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Observation of the Magnonic Dicke Superradiant Phase Transition

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arxiv 2401.01873 v1 pith:SDOYZFKB submitted 2024-01-03 quant-ph cond-mat.mtrl-sciphysics.optics

classification quant-phcond-mat.mtrl-sciphysics.optics
keywords phasesrptphotonictransitionatomscouplingcriticaldiamagnetic
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abstract

Two-level atoms coupled with single-mode cavity photons are predicted to exhibit a quantum phase transition when the coupling strength exceeds a critical value, entering a phase in which atomic polarization and photonic field are finite even at zero temperature and without external driving. However, this phenomenon, the superradiant phase transition (SRPT), is forbidden by a no-go theorem due to the existence of the diamagnetic term in the Hamiltonian. Here, we present spectroscopic evidence for a magnonic SRPT in ErFeO$_3$, where the role of the photonic mode (two-level atoms) in the photonic SRPT is played by an Fe$^{3+}$ magnon mode (Er$^{3+}$ spins). The absence of the diamagnetic term in the Fe$^{3+}$-Er$^{3+}$ exchange coupling ensures that the no-go theorem does not apply. Terahertz and gigahertz magnetospectroscopy experiments revealed the signatures of the SRPT -- a kink and a softening, respectively, of two spin-magnon hybridized modes at the critical point.

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  1. Quantum Vacuum in Matter

    quant-ph 2025-06 conditional novelty 2.0 of 10

    A perspective on cavity quantum electrodynamics in the ultrastrong coupling regime, surveying experiments, cavity designs, and open challenges for engineering materials with vacuum fluctuations.

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