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Distinct Nature of Orbital Selective Mott Phases Dominated by the Low-energy Local Spin Fluctuations

2018/08/17 by Ze-Yi Song, Xiu-Cai Jiang, Hai-Qing Lin +1 · 1 citation
Physics and Astronomy · #cond-mat.str-el

paper · pdf · doi:10.1103/physrevb.96.235119

published as Phys. Rev. B 96, 235119 (2017) · 13 pages, 17 figures

arxiv created 2018/08/17 · arxiv updated 2018/08/20

Abstract

Quantum orbital selective Mott (OSM) transitions are investigated within dynamical mean-field theory based on a two-orbital Hubbard model with different bandwidth at half filling. We find two distinct OSM phases both showing coexistence of itinerant electrons and localized spins, dependent on whether the Hund's coupling is full or of Ising type. The critical values and the nature of the OSM transitions are efficiently determined by entanglement entropy. We reveal that vanishing of the Kondo energy scale evidenced by absence of local spin fluctuations at low frequency in local dynamical spin susceptibility is responsible for the appearance of non-Fermi-liquid OSM phase in Ising Hund's coupling case. We argue that this scenario can also be applied to account for emergent quantum non-Fermi liquid in one-band Hubbard model when short-range antiferromagnetic order is considered.

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