Flat band superconductivity in a system with a tunable quantum metric : the stub lattice
arXiv:2309.11440 · doi:10.1103/PhysRevB.107.214508
Abstract
Over the past years, one witnesses a growing interest in flat band (FB) physics which has become a playground for exotic phenomena. In this study, we address the FB superconductivity in onedimensional stub chain. In contrast to the sawtooth chain or the creutz ladder, for a given strength of the attractive electron-electron interaction, the stub chain allows the tuning of the real space spreading of the FB eigenstates (quantum metric or QM). We study in detail the interplay between the interaction strength and the mean value of the QM \langle g \rangle on the pairings and on the superfluid weight D_s. Our calculations reveal several interesting and intriguing features. For instance, in the weak coupling regime, D_s with respect to \langle g \rangle exhibits two different types of behaviour. Despite the fact that the pairings differs drastically, D_s scales linearly with the QM only when its \langle g \rangle is large enough (small gap limit). On the other hand, when the QM is of small amplitude an unusual power law is found, more precisely D_s \propto \langle g \rangle^νwhere ν\longrightarrow 2 in the limit of large single particle gap. In addition to the numerical calculations, we have provided several analytical results which shed light on the physics in both the weak and strong coupling regime. Finally, we have addressed the impact of the thermal fluctuations on the superfluid weight.
9 pages, 6 figures, published in PRB
References in corpus (8)
- High temperature fractional quantum Hall states
- Fractional quantum Hall states at zero magnetic field
- Nearly-flat bands with nontrivial topology
- Superconductivity in quasi-one-dimensional Cs2Cr3As3 with large interchain distance
- Effective theory and emergent symmetry in the flat bands of attractive Hubbard models
- Superconducting Transitions in Flat Band Systems
- A new quasi-one-dimensional superconductor parent compound NaMnBi with lower antiferromagnetic transition temperatures
- Nano-pattern induced ferromagnetism in strongly correlated electrons