Designing exotic many-body states of atomic spin and motion in photonic crystals

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Abstract

Cold atoms coupled to photonic crystals constitute an exciting platform for exploring quantum many-body physics. For example, such systems offer the potential to realize strong photon-mediated forces between atoms, which depend on the atomic internal (spin) states, and where both the motional and spin degrees of freedom can exhibit long coherence times. An intriguing question then is whether exotic phases could arise, wherein crystalline or other spatial patterns and spin correlations are fundamentally tied together, an effect that is atypical in condensed matter systems. Here, we analyse one realistic model Hamiltonian in detail. We show that this previously unexplored system exhibits a rich phase diagram of emergent orders, including spatially dimerized spin-entangled pairs, a fluid of composite particles comprised of joint spin-phonon excitations, phonon-induced Neél ordering, and a fractional magnetization plateau associated with trimer formation.

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Manzoni, M. T., Mathey, L., & Chang, D. E. (2017). Designing exotic many-body states of atomic spin and motion in photonic crystals. Nature Communications, 8. https://doi.org/10.1038/ncomms14696

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