Electronic structure of bulk manganese oxide and nickel oxide from coupled cluster theory
ORAL
Abstract
We describe the ground- and excited-state electronic structure of bulk MnO and NiO using coupled cluster theory with single and double excitations (CCSD). Starting from a Hartree-Fock reference, we find fundamental gaps of 3.46 eV and 4.83 eV for MnO and NiO respectively for the 16 unit supercell, slightly overestimated compared to experiment, although finite-size scaling suggests that the gap is more severely overestimated in the thermodynamic limit. From the character of the correlated electronic bands we find both MnO and NiO to lie in the intermediate Mott/charge-transfer insulator regime, although NiO appears as a charge transfer insulator when only the fundamental gap is considered. While the lowest quasiparticle excitations are of metal 3d and O 2p character in most of the Brillouin zone, near the Γ point, the lowest conduction band quasiparticles are of s character. Our study supports the potential of coupled cluster theory to provide high level many-body insights into correlated solids.
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Presenters
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Yang Gao
Caltech
Authors
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Yang Gao
Caltech
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Qiming Sun
Tencent America LLC
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Jason Yu
UC Irvine
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Mario Motta
Almaden Research Center, IBM, IBM, Division of Chemistry and Chemical Engineering, California Institute of Technology, IBM Almaden Research Center
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James McClain
Caltech
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Alec F White
Caltech
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Austin Minnich
Division of Engineering and Applied Science, California Institute of Technology, California Institute of Technology, Caltech, Division of Engineering and Applied Sciences, California Institute of Technology
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Garnet Chan
Caltech, California Institute of Technology, Division of Chemistry and Chemical Engineering, California Institute of Technology