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Hybridization and correlation effects in the electronic structure of infinite-layer nickelates

ORAL

Abstract

We combine density functional theory and dynamical mean field theory to study the electronic structure of infinite-layer nickelate NdNiO2. Without considering correlation effects on Ni, we find adjacent NiO2 planes are coupled by a metallic Nd spacer layer. However, the largest hybridization between Ni-dx2-y2 state and itinerant electrons origins from an interstitial-s orbital instead of Nd-d orbitals. Correlation effects on Ni reduces the hybridization between Ni-dx2-y2 state and itinerant electrons and when sufficiently strong, they can open a Mott gap, which is separated by the lower Hubbard band of Ni-dx2-y2 state and hybridization states (interstitial-s and Nd-d orbitals). With correlation strength increasing, antiferromagnetic ordering occurs before the metal-insulator transition. Experimentally long-range magnetic order has not been observed in NdNiO2. This places NdNiO2 in a paramagnetic metallic phase in which the hybridization between Ni-dx2-y2 and itinerant electrons is non-negligible and Ni correlation strength is moderate.

Presenters

  • Hanghui Chen

    New York University Shanghai, NYU-ECNU Institute of Physics, New York University Shanghai, Department of Physics, New York University Shanghai

Authors

  • Yuhao Gu

    Institute of Physics, Chinese Academy of Sciences, Institute of Physics, Chinese Academy of Science

  • Sichen Zhu

    Department of Physics, New York University Shanghai

  • xiaoxuan wang

    Department of Physics, New York University Shanghai

  • Jiangping Hu

    Chinese Academy of Sciences,Institute of Physics, Institute of Physics, Chinese Academy of Sciences, Beijing National Laboratory for Condensed Matter Physics, Chinese Academy of Sciences, Institute of Physics, Chinese Academy of Science,Beijing 100190, China, Beijing National Research Center for Condensed Matter Physics, and Institute of Physics, Chinese Academy of Sciences, Institute of Physics, Chinese Academy of Science

  • Hanghui Chen

    New York University Shanghai, NYU-ECNU Institute of Physics, New York University Shanghai, Department of Physics, New York University Shanghai