论文标题

各向异性驱动的布朗磁铁系统中的逃生动力学

Escape Dynamics in an Anisotropically Driven Brownian Magneto-System

论文作者

Abdoli, Iman, Sommer, Jens-Uwe, Löwen, Hartmut, Sharma, Abhinav

论文摘要

在克莱默理论中可以很好地理解了布朗粒子在潜在障碍上的热激活逃生。当受到外部磁场的影响时,Lorentz力通过重新缩放扩散系数而减慢了逃生动力学,而不会影响指数依赖对屏障高度的依赖。在这里,我们研究了由于外部磁场引起的洛伦兹力的影响,在洛伦兹力的影响下,带电的布朗粒子的逃逸动力学从二维截短的谐波电位中。粒子通过沿不同空间方向的强度不同的噪声使粒子以各向异性驱动。我们表明,逃生时间很大程度上可以通过各向异性驾驶来调节。虽然由于两个不同的噪声,逃逸过程变为各向异性,但空间对称性在大磁场的极限中恢复。这归因于洛伦兹力在空间自由度之间引起的耦合,这使得在高磁场上无关的两个噪声之间的差异。理论预测通过布朗动力学模拟验证。原则上,我们的预测可以通过在存在磁场的情况下的布朗旋转器实验来测试。

Thermally activated escape of a Brownian particle over a potential barrier is well understood within Kramers theory. When subjected to an external magnetic field, the Lorentz force slows down the escape dynamics via a rescaling of the diffusion coefficient without affecting the exponential dependence on the barrier height. Here, we study the escape dynamics of a charged Brownian particle from a two-dimensional truncated harmonic potential under the influence of Lorentz force due to an external magnetic field. The particle is driven anisotropically by subjecting it to noises with different strengths along different spatial directions. We show that the escape time can largely be tuned by the anisotropic driving. While the escape process becomes anisotropic due to the two different noises, the spatial symmetry is restored in the limit of large magnetic fields. This is attributed to the Lorentz force induced coupling between the spatial degrees of freedom which makes the difference between two noises irrelevant at high magnetic fields. The theoretical predictions are verified by Brownian dynamics simulations. In principle, our predictions can be tested by experiments with a Brownian gyrator in the presence of a magnetic field.

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