论文标题
蜂窝偶性超酚的超流体特性
Superfluid properties of a honeycomb dipolar supersolid
论文作者
论文摘要
在偶极冷凝水上进行的最新突破性实验报告了产生超胚膜,包括二维量子液滴。但是,液滴阵列并不是唯一由平均场不稳定性和量子稳定的相互作用引起的唯一可能的非平凡密度排列。在较高的密度下,可能发生其他几种可能的密度模式,包括所谓的蜂窝超酚,这一阶段存在,因为在热力学极限下也是三角形液滴超酚的情况。我们表明,与液滴超olid相比,Honeycomb Supersolids具有倍增的超流体分数,同时保持较大的密度对比度,并且在这个意义上构成了更好的偶极超级酚。然而,与液滴超固体相反,量化的涡旋无法在蜂窝超莫利德中产生,而不会将过渡到所谓的迷宫阶段。我们表明,可以通过研究剪刀样扰动后研究动力学来可靠地探测惯性的减少量以及超流体分数。
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.