A Wave Packet Approach to Interacting Fermions
Matthias Ossadnik

TL;DR
This thesis introduces a wave packet approach using the Wilson-Wannier basis combined with renormalization group techniques to study the breakdown of Fermi liquid behavior in cuprate superconductors, providing new insights into spin liquid states.
Contribution
It develops a novel wave packet basis method integrated with RG to analyze strongly correlated fermion systems, especially in the context of high-temperature superconductors.
Findings
Anti-nodal states in the Hubbard model become insulating spin liquids.
The approach shows good qualitative agreement with exact solutions in 1D models.
Supports the conjecture of spin liquid states in the pseudogap regime.
Abstract
In this thesis, we study the breakdown of the Fermi liquid state in cuprate superconductors using the renormalization group (RG). We seek to extend earlier work on the crossover from the Fermi liquid state to the pseudo gap phase based on RG flows in the so-called saddle point regime. Progress in the derivation of effective models for the conjectured spin liquid state has been hindered, by the difficulties involved in solving the strong coupling low energy Hamiltonian. We tackle the problem by introducing an orthogonal wave packet basis, the so-called Wilson-Wannier (WW) basis, that can be used to interpolate between the momentum space and the real space descriptions. We show how to combine the WW basis with the RG, such that the RG is used to eliminate high-energy degrees of freedom, and the remaining strongly correlated system is solved approximately in the WW basis. We exemplify…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsAtomic and Subatomic Physics Research
