Spin-Mediated Mott Excitons
arXiv:2004.10825 · doi:10.1103/PhysRevB.107.075111
Abstract
Motivated by recent experiments on Mott insulators, in both iridates and ultracold atoms, we theoretically study the effects of magnetic order on the Mott-Hubbard excitons. In particular, we focus on spin-mediated doublon-holon pairing in Hubbard materials. We use several complementary theoretical techniques: mean-field theory to describe the spin degrees of freedom, the self-consistent Born approximation to characterize individual charge excitations across the Hubbard gap, and the Bethe-Salpeter equation to identify bound states of doublons and holons. The binding energy of the Hubbard exciton is found to increase with increasing the N{é}el order parameter, while the exciton mass decreases. We observe that these trends rely significantly on the retardation of the effective interaction, and require consideration of multiple effects from changing the magnetic order. Our results are consistent with the key qualitative trends observed in recent experiments on iridates. Moreover, the findings could have direct implications on ultracold atom Mott insulators, where the Hubbard model is the exact description of the system and the microscopic degrees of freedom can be directly accessed.
11 pages, 11 figures --- v2 contains some expanded discussion
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Cited by in corpus (12)
- Magnetically propagating Hund's exciton in van der Waals antiferromagnet NiPS3
- Photo-induced nonequilibrium states in Mott insulators
- Pairing of holes by confining strings in antiferromagnets
- Mott-moiré excitons
- A Hubbard exciton fluid in a photo-doped antiferromagnetic Mott insulator
- Polaron spectroscopy of interacting Fermi systems: insights from exact diagonalization
- Collective optical properties of moiré excitons
- Diagnosing electronic phases of matter using photonic correlation functions
- Observation of excitons bound by antiferromagnetic correlations
- Exciton-spin interactions in antiferromagnetic charge-transfer insulators
- Distinct charge and spin recovery dynamics in a photo-excited Mott insulator
- Photoemission Signatures of Photoinduced Carriers and Excitons in One-Dimensional Mott Insulators