Dipartimento di Fisica, Università di Trento and CNR-INO BEC Center, I-38050 Povo, Trento, Italy.
Departament de Física i Enginyeria Nuclear, Universitat Politècnica de Catalunya, Campus Nord B4-B5, E-08034 Barcelona, Spain.
Phys Rev Lett. 2018 Jul 13;121(2):025302. doi: 10.1103/PhysRevLett.121.025302.
We investigate the propagation of spin waves in two-component mixtures of one-dimensional Bose gases interacting through repulsive contact potentials. By using quantum Monte Carlo methods we calculate static ground-state properties, such as the spin susceptibility and the spin structure factor, as a function of the coupling strengths and we determine the critical parameters for phase separation. In homogeneous mixtures, results of the velocity of spin waves and of its softening close to the critical point of phase separation are obtained by means of hydrodynamic theory and a sum-rule approach. We quantify the nondissipative drag effect, resulting from the Andreev-Bashkin current-current interaction between the two components of the gas, and we show that in the regime of strong coupling it causes a significant suppression of the spin-wave velocity.
我们研究了通过排斥接触势相互作用的一维玻色气体二分量混合物中自旋波的传播。通过使用量子蒙特卡罗方法,我们计算了静态基态性质,例如自旋磁化率和自旋结构因子,作为耦合强度的函数,并确定了相分离的临界参数。在均匀混合物中,通过流体力学理论和和一个求和规则方法,得到了自旋波速度及其在接近相分离临界点时软化的结果。我们量化了由于气体的两个分量之间的安德烈夫-巴什金电流-电流相互作用而产生的无耗散拖曳效应,并表明在强耦合 regime 下,它会导致自旋波速度的显著抑制。