论文标题

偶极性旋转气体中冷凝水磁化的stoner-wohlfarth切换和激发阻尼的计量

Stoner-Wohlfarth switching of the condensate magnetization in a dipolar spinor gas and the metrology of excitation damping

论文作者

Shinn, Seong-Ho, Braun, Daniel, Fischer, Uwe R.

论文摘要

我们考虑均匀的旋转旋转定位近似中的准二极旋转纺纱子bose-enstein凝结物,即单向局部磁化。 By analytically calculating the exact effective dipole-dipole interaction, we derive a Landau-Lifshitz-Gilbert equation for the dissipative condensate magnetization dynamics, and show how it leads to the Stoner-Wohlfarth model of a uni-axial ferro-magnetic particle, where the latter model determines the stable magnetization patterns and hysteresis curves for switching between them.对于沿轴向,较长方向指向的外部磁场,我们通过分析求解Landau-Lifshitz-Gilbert方程。该溶液明确表明,磁性偶极 - 偶极相互作用{\ IT加速}磁矩分布的耗散动力学以及磁矩方向的相关截面。在适当的条件下,由于偶极 - 偶极相互作用而导致的磁化方向的去绘制在时间缩放内发生,最多要比当前实验实现的偶极纺纱液的寿命小两个数量级。这使得在Gross-Pitaevski \ vı〜平均场方程中可以实验访问耗散参数$γ$,因为该系统目前缺乏对耗散过程的完整量子动力学处理的系统,特别是对$γ$是单个标量表独立于Spin Indices独立于单个标量的实验检查。

We consider quasi-one-dimensional dipolar spinor Bose-Einstein condensates in the homogeneous-local-spin-orientation approximation, that is with unidirectional local magnetization. By analytically calculating the exact effective dipole-dipole interaction, we derive a Landau-Lifshitz-Gilbert equation for the dissipative condensate magnetization dynamics, and show how it leads to the Stoner-Wohlfarth model of a uni-axial ferro-magnetic particle, where the latter model determines the stable magnetization patterns and hysteresis curves for switching between them. For an external magnetic field pointing along the axial, long direction, we analytically solve the Landau-Lifshitz-Gilbert equation. The solution explicitly demonstrates that the magnetic dipole-dipole interaction {\it accelerates} the dissipative dynamics of the magnetic moment distribution and the associated dephasing of the magnetic moment direction. Under suitable conditions, dephasing of the magnetization direction due to dipole-dipole interactions occurs within time scales up to two orders of magnitude smaller than the lifetime of currently experimentally realized dipolar spinor condensates, e.g., produced with the large magnetic-dipole-moment atoms ${}^{166} \textrm{Er}$. This enables experimental access to the dissipation parameter $Γ$ in the Gross-Pitaevski\vı~mean-field equation, for a system currently lacking a complete quantum kinetic treatment of dissipative processes and, in particular, an experimental check of the commonly used assumption that $Γ$ is a single scalar independent of spin indices.

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