Functional renormalization with interaction flows: A single-boson exchange perspective and application to electron-phonon systems
Aiman Al-Eryani, Marcel Gievers, Kilian Fraboulet

TL;DR
This paper extends the functional renormalization group (fRG) framework to include dressed interactions and propagators, enabling new applications like temperature flows in models with retarded interactions, demonstrated on electron-phonon systems.
Contribution
It introduces a novel fRG formulation incorporating regulators for both propagators and interactions, expanding the method's applicability beyond conventional schemes.
Findings
The extended fRG scheme converges well against traditional cutoff methods.
A new temperature-flow scheme with combined propagator and interaction cutoff is proposed.
Demonstrated effectiveness on an Anderson impurity model coupled to phonons.
Abstract
The functional renormalization group (fRG) is acknowledged as a powerful tool in quantum many-body physics and beyond. On the technical side, conventional implementations of the fRG rely on regulators for bare propagators only. Starting from Schwinger--Dyson and Bethe--Salpeter equations, we develop here an fRG formulation where both bare propagators and bare interactions can be dressed with regulators. The approach thus obtained is an extension of the multiloop fRG recently introduced for many-fermion systems. Using the single-boson exchange decomposition, we show that the underlying flow equations are simply interpreted as adding a regulator to the bosonic propagator and that such an extension scarcely changes the original structure of the flow equations. Overall, we provide a framework for implementing approaches that cannot be realized with conventional fRG methods, such as…
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