Competing ground states of strongly correlated bosons in the Harper-Hofstadter-Mott model
Stefan S. Natu, Erich J. Mueller, S. Das Sarma

TL;DR
This paper investigates the complex phase diagram of strongly correlated bosons in a magnetic field using a cluster approach, revealing various superfluid, density wave, and incompressible states with detailed numerical analysis.
Contribution
It introduces a comprehensive numerical study of bosonic ground states in the Harper-Hofstadter-Mott model, highlighting the emergence of novel incompressible and supersolid phases.
Findings
Large flux leads to a strongly correlated superfluid state.
Competing incompressible density wave states are metastable at certain fillings.
Incompressible phases near Mott lobes suggest potential for exotic quantum states.
Abstract
Using an efficient cluster approach, we study the physics of two-dimensional lattice bosons in a strong magnetic field in the regime where the tunneling is much weaker than the on-site interaction strength. We study both dilute, hard core bosons at filling factors much smaller than unity occupation per site, and the physics in the vicinity of the superfluid-Mott lobes as the density is tuned away from unity. For hardcore bosons, we carry out extensive numerics for a fixed flux per plaquette and . At large flux, the lowest energy state is a strongly correlated superfluid, analogous to He-, in which the order parameter is dramatically suppressed, but non-zero. At filling factors , we find competing incompressible states which are metastable. These appear to be commensurate density wave states. For small flux, the situation is reversed, and the ground…
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