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具有偶极相互作用的旋转棘轮

Rotational ratchets with dipolar interactions.

作者信息

Jäger Sebastian, Klapp Sabine H L

机构信息

Institute of Theoretical Physics, Technical University Berlin, Hardenbergstrasse 36, 10623 Berlin, Germany.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Dec;86(6 Pt 1):061402. doi: 10.1103/PhysRevE.86.061402. Epub 2012 Dec 6.

Abstract

We report results from a computer simulation study on the rotational ratchet effect in systems of magnetic particles interacting via dipolar interactions. The ratchet effect consists of directed rotations of the particles in an oscillating magnetic field, which lacks a net rotating component. Our investigations are based on Brownian dynamics simulations of such many-particle systems. We investigate the influence of both the random and deterministic contributions to the equations of motion on the ratchet effect. As a main result, we show that dipolar interactions can have an enhancing as well as a dampening effect on the ratchet behavior depending on the dipolar coupling strength of the system under consideration. The enhancement is shown to be caused by an increase in the effective field on a particle generated by neighboring magnetic particles, while the dampening is due to restricted rotational motion in the effective field. Moreover, we find a nontrivial influence of the short-range, repulsive interaction between the particles.

摘要

我们报告了一项关于通过偶极相互作用的磁性粒子系统中旋转棘轮效应的计算机模拟研究结果。棘轮效应包括粒子在缺乏净旋转分量的振荡磁场中的定向旋转。我们的研究基于此类多粒子系统的布朗动力学模拟。我们研究了运动方程中随机和确定性贡献对棘轮效应的影响。作为主要结果,我们表明,根据所考虑系统的偶极耦合强度,偶极相互作用对棘轮行为可能具有增强或抑制作用。增强作用表明是由相邻磁性粒子在粒子上产生的有效场增加引起的,而抑制作用则是由于在有效场中旋转运动受限。此外,我们发现粒子之间短程排斥相互作用具有重要影响。

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