Superconductivity in high-$T_c$ and related strongly correlated systems from variational perspective: Beyond mean field theory
J\'ozef Spa{\l}ek, Maciej Fidrysiak, Micha{\l} Zegrodnik, and Andrzej, Biborski

TL;DR
This review explores the universal features of high-$T_c$ and related strongly correlated systems using variational methods beyond mean-field theory, highlighting key properties, models, and experimental comparisons.
Contribution
It introduces a variational approach combining RMFT and DE-GWF to analyze high-$T_c$ systems, extending beyond traditional models and including collective excitations.
Findings
Identification of two energy scales separated by a dispersion kink.
Quantitative analysis of superconductivity, nematicity, and density waves in high-$T_c$ systems.
Comparison of theoretical collective excitations with experimental data.
Abstract
In this review, we single out selected universal features of high- and related systems, which can be compared with experiment. We start with the concept of real-space pairing, combined with strong correlations. The discussion of concrete properties relies on variational approach, based on renormalized mean-field theory (RMFT) in the form of statistically-consistent Gutzwiller approximation (SGA), and Diagrammatic Expansion of the Variational Wave Function (DE-GWF). Two energy scales appear, one involving quasiparticles close to the Fermi energy, and the other reflecting the correlated state. Those two regimes are separated by a kink in the dispersion relation, observed in photoemission. One obtains both the doping dependent properties and renormalized quasiparticles. The reviewed ground-state characteristics for high- systems encompass superconductivity, nematicity, charge-…
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