Phase diagram of hard-core bosons on a frustrated zig-zag ladder
arXiv:1101.3217 · doi:10.1103/PhysRevB.83.155106
Abstract
We study hard-core bosons with unfrustrated nearest-neighbor hopping and repulsive interaction on a zig-zag ladder. As a function of the boson density and , the ground state displays different quantum phases. A standard one-component Tomonaga-Luttinger liquid is stable for (and ) at any value of . At commensurate densities , , and insulating (crystalline) phases are stabilized for a sufficiently large interaction . For intermediate densities and large , the ground state shows a clear evidence of a bound state of two bosons, implying gapped single-particle excitations but gapless excitations of boson pairs. Here, the low-energy properties may be described by a two-component Tomonaga-Luttinger liquid with a finite gap in the antisymmetric sector. Finally, for the same range of boson densities and weak interactions, the system is again a one-component Tomonaga-Luttinger liquid with no evidence of any breaking of discrete symmetries, in contrast to the frustrated case, where a symmetry breaking has been predicted.
7 pages and 10 figures
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