Superfluid properties of a honeycomb dipolar supersolid
arXiv:2209.10450 · doi:10.1103/PhysRevA.106.063301
Abstract
Recent breakthrough experiments on dipolar condensates have reported the creation of supersolids, including two-dimensional arrays of quantum droplets. Droplet arrays are, however, not the only possible non-trivial density arrangement resulting from the interplay of mean-field instability and quantum stabilization. Several other possible density patterns may occur in trapped condensates at higher densities, including the so-called honeycomb supersolid, a phase that exists, as it is also the case of a triangular droplet supersolid, in the thermodynamic limit. We show that compared to droplet supersolids, honeycomb supersolids have a much-enhanced superfluid fraction while keeping a large density contrast, and constitute in this sense a much better dipolar supersolid. However, in contrast to droplet supersolids, quantized vortices cannot be created in a honeycomb supersolid without driving a transition into a so-called labyrinthic phase. We show that the reduced moment of inertia, and with it the superfluid fraction, can be however reliably probed by studying the dynamics following a scissors-like perturbation.
References in corpus (13)
- Transient supersolid properties in an array of dipolar quantum droplets
- Long-lived and transient supersolid behaviors in dipolar quantum gases
- Two-dimensional supersolidity in a dipolar quantum gas
- Supersolidity around a critical point in dipolar Bose Einstein condensates
- Two-Dimensional Supersolid Formation in Dipolar Condensates
- Pattern Formation in Quantum Ferrofluids: from Supersolids to Superglasses
- Rotating a supersolid dipolar gas
- Phases of supersolids in confined dipolar Bose-Einstein condensates
- Quantized vortices in dipolar supersolid Bose-Einstein condensed gases
- Self-bound dipolar droplets and supersolids in molecular Bose-Einstein condensates
- Maintaining supersolidity in one and two dimensions
- Can angular oscillations probe superfluidity in dipolar supersolids?
- Moment of Inertia and Dynamical Rotational Response of a Supersolid Dipolar Gas
Cited by in corpus (14)
- Glitches in rotating supersolids
- Vortex Lattices in Strongly Confined Quantum Droplets
- Vortices in dipolar Bose-Einstein condensates
- Metastable Patterns in one- and two-component dipolar Bose-Einstein Condensates
- Supersolid Stacks in Antidipolar Bose-Einstein Condensates
- Classical linear chain behavior from dipolar droplets to supersolids
- Supercurrent-carrying supersolid in spin-orbit-coupled Bose-Einstein condensates
- Induced supersolidity in a Dy-Er mixture
- Honeycomb supersolid -- Dirac points and shear-instability induced crystal transitions
- Anomalous dispersion of shear waves in dipolar supersolids
- Universal properties of dipolar Bose polarons in two dimensions
- Vortex nucleation processes in rotating lattices of Bose-Einstein condensates ruled by the on-site phases
- Dipole-mode and scissors-mode oscillations of a dipolar supersolid
- Dynamical signatures of superfluidity and shear rigidity in different phases of a dipolar Bose-Einstein condensate