论文标题

berezinskii-kosterlitz-轻松飞机铁磁超过的过渡

Berezinskii-Kosterlitz-Thouless transitions in an easy-plane ferromagnetic superfluid

论文作者

Underwood, Andrew P. C., Groszek, Andrew J., Yu, Xiaoquan, Blakie, P. B., Williamson, L. A.

论文摘要

二维(2D)自旋1卵气体在易于平面铁磁相中表现出两个Berezenskii-Kosterlitz-thouless(BKT)。较高的温度转变与质量电流的超流量有关,主要由单个自旋组分确定。较低的温度转变与轴向自旋电流的超流量,横向自旋密度的准长范围和极性核自旋涡旋(PCV)的结合。在自旋BKT温度上方,构成每个PCV的组分循环在空间上分开,这表明在高能量物理学中类似于夸克的反封化可能的解料。组合相互作用会引起自旋组件之间的超氟阻力,我们在零温度下进行分析计算。我们介绍质量/自旋超流相图作为二次Zeeman Energy $ Q $的函数。在$ q = 0 $上,系统处于各向同性旋转阶段,$ \ mathrm {so}(3)$对称。这里的流体响应表现出系统大小的依赖性,表明没有BKT转变。尽管如此,对于有限系统,随着温度降低,自旋相关的衰减从指数变为代数。

A two-dimensional (2D) spin-1 Bose gas exhibits two Berezenskii-Kosterlitz-Thouless (BKT) transitions in the easy-plane ferromagnetic phase. The higher temperature transition is associated with superfluidity of the mass current determined predominantly by a single spin component. The lower temperature transition is associated with superfluidity of the axial spin current, quasi-long range order of the transverse spin density and binding of polar-core spin vortices (PCVs). Above the spin BKT temperature, the component circulations that make up each PCV spatially separate, suggesting possible deconfinement analogous to quark deconfinement in high energy physics. Intercomponent interactions give rise to superfluid drag between the spin components, which we calculate analytically at zero temperature. We present the mass/spin superfluid phase diagram as a function of quadratic Zeeman energy $q$. At $q=0$ the system is in an isotropic spin phase with $\mathrm{SO}(3)$ symmetry. Here the fluid response exhibits a system size dependence, suggesting the absence of a BKT transition. Despite this, for finite systems the decay of spin correlations changes from exponential to algebraic as the temperature is decreased.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源