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Critical role of electronic correlations in determining crystal structure of transition metal compounds

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arxiv 1710.08586 v2 pith:TBMQNGPV submitted 2017-10-24 cond-mat.str-el

classification cond-mat.str-el
keywords correlationsstructurecrystalinfluencestrongbehaviorcompoundselectron
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abstract

The choice that a solid system "makes" when adopting a crystal structure (stable or metastable) is ultimately governed by the interactions between electrons forming chemical bonds. By analyzing 6 prototypical binary transition-metal compounds we demonstrate here that the orbitally-selective strong $d$-electron correlations influence dramatically the behavior of the energy as a function of the spatial arrangements of the atoms. Remarkably, we find that the main qualitative features of this complex behavior can be traced back to simple electrostatics, i.e., to the fact that the strong $d$-electron correlations influence substantially the charge transfer mechanism, which, in turn, controls the electrostatic interactions. This result advances our understanding of the influence of strong correlations on the crystal structure, opens a new avenue for extending structure prediction methodologies to strongly correlated materials, and paves the way for predicting and studying metastability and polymorphism in these systems.

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    A quantum-assisted ghost Gutzwiller ansatz, using QSCI with LUCJ states and circuit cutting on 24-qubit IQM hardware, captures the Mott transition in the Bethe lattice Hubbard model with only about 1% of the CI basis states.

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