论文标题

层流管中电子自旋涡流耦合的电压

Electrical voltage by electron spin-vorticity coupling in laminar ducts

论文作者

Kazerooni, Hamid Tabaei, Zinchenko, Georgy, Schumacher, Jörg, Cierpka, Christian

论文摘要

我们报告了电压的线性缩放定律,这是毛细管和管道中压力下降的函数。该电压是由称为自旋水动力产生(SHDG)的过程产生的,这是集体电子自旋的结果 - 耦合到层流流中的涡度场,并结合使用反向自旋 - 旋转效果。我们研究了层流管流中的这种现象,其宽度至高度比率从1(平方管)到无限(二维通道)不等。首先,我们通过小型参数的方法以及适当的边界条件来分析求解SHDG的代客纤维旋转扩散方程。其次,提出的线性缩放定律通过使用具有矩形和方形横截面的毛细管进行一系列实验来验证。实验结果表明,分析发现的缩放定律非常好。随后通过压降层状壁构成的层状流动的宽度速度取代,这表明了电压的通用缩放定律,该定律结合了我们可以在实验中研究的所有管道和导管几何形状。最后,对于圆管,矩形和方形管道估计系统的效率。这项研究表明,对于圆管和平方管的直径和高度相同的平方导管,自旋流体动力发电机的效率相同。因此,由于制造的易用性以及以紧凑形式将实验扩展到并行设置的可能性,因此具有方形横截面的微通道似乎是自旋流体动力发电机的最佳选择。

We report a linear scaling law for an electrical voltage as a function of the pressure drop in capillary pipes and ducts. This voltage is generated by a process which is termed spin hydrodynamic generation (SHDG), a result of the collective electron spin--coupling to the vorticity field in the laminar flow in combination with an inverse spin-Hall effect. We study this phenomenon in laminar duct flows with different width-to-height aspect ratios ranging from 1 (square ducts) to infinite (two dimensional channels). First, we analytically solve the governing Valet-Fert spin diffusion equations for the SHDG by means of the method of small parameters together with proper boundary conditions for the set of inhomogeneous elliptic partial differential equations. Secondly, the proposed linear scaling law is validated through a series of experiments using capillary tubes with rectangular and square cross-sections. The experimental results show a very good agreement to the analytically found scaling law. A subsequent substitution of the bulk velocity of the laminar wall-bounded flows by the pressure drop reveals a universal scaling law for the electrical voltage that incorporates all pipe and duct geometries which we could study in our experiments. Finally, the efficiency of the system is estimated for circular pipes, rectangular and square ducts. This study shows that the efficiency of a spin hydrodynamic generator is the same for a circular pipe and a square duct with the same diameter and height, respectively. Hence, due to the ease of manufacturing and the possibility to scale the experiments up to parallel settings in a compact form, micro-channels with a square cross-section seem to be the optimum for a spin hydrodynamic generator.

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