Universal collective modes from strong electronic correlations: Modified $1/\mathcal{N}_f$ theory with application to high-$T_c$ cuprates
Maciej Fidrysiak, J\'ozef Spa{\l}ek

TL;DR
This paper develops a novel variational wave function combined with a $1/\mathcal{N}_f$ expansion to analyze collective modes in strongly correlated electron systems, successfully applying it to high-$T_c$ cuprates and matching experimental data.
Contribution
It introduces a new VWF+$1/\mathcal{N}_f$ scheme that extends weak-coupling theories to strong correlations and systematically evaluates dynamical responses in high-$T_c$ cuprates.
Findings
Good agreement with quantum Monte Carlo data.
Demonstration of well-defined spin and charge excitations.
Non-monotonic charge-excitation energy dependence on interaction strength.
Abstract
A nonzero-temperature technique for strongly correlated electron lattice systems, combining elements of both variational wave function (VWF) approach and expansion in the inverse number of fermionic flavors (), is developed. The departure point, VWF method, goes beyond the renormalized mean-field theory and provides semi-quantitative description of principal equilibrium properties of high- superconducting cuprates. The developed here scheme of VWF+, in the leading order provides dynamical spin and charge responses around the VWF solution, generalizing the weak-coupling spin-fluctuation theory to the regime of strong correlations. Thermodynamic corrections to the correlated saddle-point state arise systematically at consecutive orders. Explicitly, VWF+ is applied to evaluate dynamical response functions for the hole-doped Hubbard…
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