Towards a Quantum Fluid Theory of Correlated Many-Fermion Systems from First Principles


Towards a Quantum Fluid Theory of Correlated Many-Fermion Systems from First Principles

Moldabekov, Z.; Dornheim, T.; Gregori, G.; Graziani, F.; Bonitz, M.; Cangi, A.

Correlated many-fermion systems emerge in a broad range of phenomena in warm dense matter, plasmonics, and ultracold atoms. Quantum hydrodynamics (QHD) complements first-principles methods for many-fermion systems at larger scales. We illustrate the failure of the standard Bohm potential central to QHD for strong perturbations when the density perturbation is larger than about 10−3 of the mean density. We then extend QHD to this regime via the many-fermion Bohm potential from first-principles. This may lead to more accurate QHD simulations beyond their common application domain in the presence of strong perturbations at scales unattainable with first-principles methods.

Keywords: warm dense matter; Condensed Matter Physics - Computational

Related publications

Permalink: https://www.hzdr.de/publications/Publ-33702