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Computation of the correlated metal-insulator transition in vanadium dioxide from first principles

Strongly Correlated Electrons 2017-12-20 v2 Materials Science

Abstract

Vanadium dioxide(VO2_2) is a paradigmatic example of a strongly correlated system that undergoes a metal-insulator transition at a structural phase transition. To date, this transition has necessitated significant post-hoc adjustments to theory in order to be described properly. Here we report standard state-of-the-art first principles quantum Monte Carlo (QMC) calculations of the structural dependence of the properties of VO2_2. Using this technique, we simulate the interactions between electrons explicitly, which allows for the metal-insulator transition to naturally emerge, importantly without ad-hoc adjustments. The QMC calculations show that the structural transition directly causes the metal-insulator transition and a change in the coupling of vanadium spins. This change in the spin coupling results in a prediction of a momentum-independent magnetic excitation in the insulating state. While two-body correlations are important to set the stage for this transition, they do not change significantly when VO2_2 becomes an insulator. These results show that it is now possible to account for electron correlations in a quantitatively accurate way that is also specific to materials.

Keywords

Cite

@article{arxiv.1310.1066,
  title  = {Computation of the correlated metal-insulator transition in vanadium dioxide from first principles},
  author = {Huihuo Zheng and Lucas K. Wagner},
  journal= {arXiv preprint arXiv:1310.1066},
  year   = {2017}
}