Obstructed Cooper pairs in flat band systems - weakly-coherent superfluids and exact spin liquids
Tamaghna Hazra, Nishchhal Verma, J\"org Schmalian

TL;DR
This paper investigates flat band superconductivity, revealing that strong pairing interactions can lead to obstructed Cooper pairs with zero superfluid stiffness and a topologically ordered ground state.
Contribution
It demonstrates a novel mechanism where strong pairing causes localization of Cooper pairs, resulting in a flat bosonic band and a topologically ordered quantum dimer model.
Findings
Obstructed Cooper pairs exhibit frustrated motion and zero superfluid stiffness.
The ground state at quarter filling maps onto a quantum dimer model with a spin liquid phase.
Exact localized eigenstates and degeneracies are found in the many-body spectrum.
Abstract
Superconductivity in a partially filled flat band presents a vexing conceptual hurdle because the absence of a Fermi surface precludes a weak-coupling regime where one can extend insights from the Bardeen-Cooper-Schrieffer picture of a Fermi surface instability. We approach the strongly correlated problem of flat band superconductivity from the strong coupling limit of local attractive interactions on line-graph lattices, whose non-interacting bandstructures host exactly flat bands. In this limit, the pair kinetic energy which sets the superfluid stiffness is expected to scale inversely with the pair binding interaction. Here we demonstrate a striking counterexample. We show that when doped charges propagate on the line-graph of a lattice with strong pairing interaction, they bind into obstructed Cooper pairs whose motion is frustrated by destructive interference. As a result, the…
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