Lobo Carlos, Sinatra Alice, Castin Yvan
Laboratoire Kastler Brossel, Ecole Normale Supérieure, 24 rue Lhomond, 75231 Paris CEDEX 05, France.
Phys Rev Lett. 2004 Jan 16;92(2):020403. doi: 10.1103/PhysRevLett.92.020403. Epub 2004 Jan 15.
We show that the formation of a vortex lattice in a weakly interacting Bose condensed gas can be modeled with the nonlinear Schrödinger equation for both T=0 and finite temperatures without the need for an explicit damping term. Applying a weak rotating anisotropic harmonic potential, we find numerically that the turbulent dynamics of the field produces an effective dissipation of the vortex motion and leads to the formation of a lattice. For T=0, this turbulent dynamics is triggered by a rotational dynamic instability of the condensate. For finite temperatures, noise is present at the start of the simulation and allows the formation of a vortex lattice at a lower rotation frequency, the Landau frequency. These two regimes have different vortex dynamics. We show that the multimode interpretation of the classical field is essential.
我们表明,在弱相互作用的玻色凝聚气体中涡旋晶格的形成可以用非线性薛定谔方程来模拟,无论是在T = 0还是有限温度下,都无需明确的阻尼项。施加一个弱旋转各向异性谐振势,我们通过数值计算发现,场的湍流动力学产生了涡旋运动的有效耗散,并导致了晶格的形成。对于T = 0,这种湍流动力学是由凝聚体的旋转动力学不稳定性引发的。对于有限温度,在模拟开始时存在噪声,这使得在较低的旋转频率(朗道频率)下形成涡旋晶格成为可能。这两种情况具有不同的涡旋动力学。我们表明,经典场的多模解释至关重要。