Spectrum, Lifshitz transitions and orbital currents in frustrated fermionic ladders with a uniform flux
Bachana Beradze, Alexander Nersesyan

TL;DR
This paper studies the effects of lattice frustration and magnetic flux on a triangular fermionic ladder, revealing topological Lifshitz transitions, orbital current behavior, and the emergence of Dirac nodes at half-filling.
Contribution
It introduces a detailed analysis of flux-induced topological transitions and orbital currents in frustrated fermionic ladders with alternating interchain hopping.
Findings
Lifshitz transitions are shifted near half-flux quantum due to frustration.
Lattice frustration breaks particle-hole symmetry, affecting phase diagrams.
Dirac nodes appear at the Brillouin zone boundary at half-flux quantum.
Abstract
Ultracold Fermi gases with synthetic gauge field represent an excellent platform to study the combined effect of lattice frustration and an effective magnetic flux close to one flux quantum per particle. The minimal theoretical model to accomplish this task is a system of spinless noninteracting fermions on a triangular two-chain flux ladder. In this paper we consider this model close to half-filling, with interchain hopping amplitudes alternating along the zigzag bonds of the ladder and being small. In such setting qualitative changes in the ground state properties of the model, most notably the flux-induced topological Lifshitz transitions are shifted towards the values of the flux per a diatomic plaquette () close to the flux quantum (). Geometrical frustration of the lattice breaks the particle-hole spectral symmetry present in non-frustrated ladders,…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics · Physics of Superconductivity and Magnetism
