Papoular D J, Pitaevskii L P, Stringari S
INO-CNR BEC Center and Dipartimento di Fisica, Università di Trento, 38123 Povo, Italy.
INO-CNR BEC Center and Dipartimento di Fisica, Università di Trento, 38123 Povo, Italy and Kapitza Institute for Physical Problems, Kosygina 2, 119334 Moscow, Russia.
Phys Rev Lett. 2014 Oct 24;113(17):170601. doi: 10.1103/PhysRevLett.113.170601. Epub 2014 Oct 20.
We analyze theoretically the transport properties of a weakly interacting ultracold Bose gas enclosed in two reservoirs connected by a constriction. We assume that the transport of the superfluid part is hydrodynamic, and we describe the ballistic transport of the normal part using the Landauer-Büttiker formalism. Modeling the coupled evolution of the phase, atom number, and temperature mismatches between the reservoirs, we predict that Helmholtz (plasma) oscillations can be observed at nonzero temperatures below Tc. We show that, because of its strong compressibility, the Bose gas is characterized by a fast thermalization compared to the damping time for plasma oscillations, accompanied by a fast transfer of the normal component. This fast thermalization also affects the gas above Tc, where we present a comparison to the ideal fermionic case. Moreover, we outline the possible realization of a superleak through the inclusion of a disordered potential.
我们从理论上分析了被限制在由一个狭窄通道连接的两个储液器中的弱相互作用超冷玻色气体的输运性质。我们假设超流部分的输运是流体动力学的,并使用朗道尔 - 比蒂克形式理论来描述正常部分的弹道输运。通过对储液器之间的相位、原子数和温度失配的耦合演化进行建模,我们预测在低于临界温度Tc的非零温度下可以观察到亥姆霍兹(等离子体)振荡。我们表明,由于玻色气体具有很强的可压缩性,与等离子体振荡的阻尼时间相比,它具有快速热化的特征,同时伴随着正常组分的快速转移。这种快速热化也影响高于Tc的气体,我们在此将其与理想费米子情况进行了比较。此外,我们概述了通过引入无序势实现超漏的可能性。