Electronic structure theory of the hidden order material URu$_2$Si$_2$
P. M. Oppeneer, J. Rusz, S. Elgazzar, M.-T. Suzuki, T. Durakiewicz,, and J. A. Mydosh

TL;DR
This paper provides a detailed electronic structure analysis of URu$_2$Si$_2$, exploring its different phases and proposing a dynamical symmetry breaking model to explain the hidden order phase.
Contribution
It introduces a comprehensive DFT and DMFT study revealing the nature of 5f electrons and proposes a dynamical symmetry breaking mechanism for the hidden order phase.
Findings
LSDA and GGA accurately describe low-temperature phases
Fermi surface gapping occurs upon antiferromagnetic symmetry breaking
Hidden order explained by dynamical symmetry breaking with spin fluctuations
Abstract
We report a comprehensive electronic structure investigation of the paramagnetic (PM), the large moment antiferromagnetic (LMAF), and the hidden order (HO) phases of URuSi. We have performed relativistic full-potential calculations on the basis of the density functional theory (DFT), employing different exchange-correlation functionals to treat electron correlations within the open -shell of uranium. Specifically, we investigate---through a comparison between calculated and low-temperature experimental properties---whether the electrons are localized or delocalized in URuSi. We also performed dynamical mean field theory calculations (LDA+DMFT) to investigate the temperature evolution of the quasi-particle states at 100~K and above, unveiling a progressive opening of a quasi-particle gap at the chemical potential when temperature is reduced. A detailed comparison…
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