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Kelvin mode of a vortex in a nonuniform Bose-Einstein condensate

机译:非均匀玻色-爱因斯坦凝聚物中涡旋的开尔文模式

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In a uniform fluid, a quantized vortex line with circulation h/M can support long-wavelength helical traveling waves proportional toe(k)(i(kz-omega)t) with the well-known Kelvin dispersion relation omega(k)approximate to((h) over bark(2)/2M)ln(1/k/xi), where xi is the vortex-core radius. This result is extended to include the effect of a nonuniform harmonic trap potential, using a quantum generalization of the Biot-Savart law that determines the local velocity V of each element of the vortex line. The normal-mode eigenfunctions form an orthogonal Sturm-Liouville set. Although the line's curvature dominates the dynamics, the transverse and axial trapping potential also affect the normal modes of a straight vortex on the symmetry axis of an axisymmetric Thomas-Fermi condensate. The leading effect of the nonuniform condensate density is to increase the amplitude along the axis away from the trap center. Near the ends, however, a boundary layer forms to satisfy the natural Sturm-Liouville boundary conditions. For a given applied frequency, the next-order correction renormalizes the local wave number k(z) upward near the trap center, and k(z) then increases still more toward the ends.
机译:在均匀流体中,循环h / M的量化涡流线可以支持与e(k)(i(kz-omega)t)成比例的长波螺旋行波,众所周知的开尔文频散关系omega(k)近似于((h)在树皮(2)/ 2M)ln(1 / k / xi)上,其中xi是涡旋核半径。使用确定了涡旋线每个元素的局部速度V的比奥-萨瓦特定律的量子概括,可以将此结果扩展为包括非均匀谐波陷阱电势的影响。正常模式特征函数形成正交Sturm-Liouville集。尽管线的曲率支配了动力学,但横向和轴向的捕获势也影响轴对称的Thomas-Fermi冷凝物的对称轴上的直涡的正常模式。凝结水密度不均匀的主要作用是增加远离捕集阱中心的轴线上的振幅。然而,在端部附近形成边界层以满足自然Sturm-Liouville边界条件。对于给定的施加频率,下一阶校正将陷波中心附近的局部波数k(z)重新归一化,然后k(z)进一步向两端增加。

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