The flow of local quantum fluids: Conservation laws and vertex corrections from many-body linear-response theory with local self-energy
Davide Valentinis

TL;DR
This paper derives the exact nonlocal electrodynamic response of strongly correlated quantum fluids with local, frequency-dependent interactions, highlighting symmetry conditions under which vertex corrections vanish.
Contribution
It provides explicit formulas for nonlocal correlation functions in Fermi and non-Fermi liquids, advancing understanding of quantum fluid responses with local self-energies.
Findings
Vertex corrections vanish at q=0 under certain symmetries.
Current-current correlation functions have no vertex corrections for quadratic dispersions.
Explicit nonlocal response functions are derived for both Fermi and non-Fermi liquids.
Abstract
In non-diffusive conduction regimes of strongly correlated quantum electron systems, electromagnetic perturbations simultaneously probe the electronic dynamics in time and space: the exchanged energy excites retarded, i.e., frequency-dependent, many-body interactions, while the probing spatial modulation renders the response spatially nonlocal, i.e., dependent on the external wave vector . This work determines the exact nonlocal electrodynamic response of such dynamical quantum fluids under the assumptions of local, frequency-dependent interactions and charge/mass conservation. The latter is ensured by Bethe-Salpeter equations for renormalized interaction vertices, entering the Kubo formalism for two-particle correlation functions (e.g., for density, currents, momentum, stress). Within such framework, it is shown that vertex corrections generally vanish at …
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