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Separation of two attractive ferromagnetic ellipsoidal particles by hydrodynamic interactions under alternating magnetic field

机译:交替磁场下水动力相互作用的分离两种有吸引力的铁磁性椭圆形颗粒

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摘要

In applications where magnetic particles are used to detect and dose targeted molecules, it is of major importance to prevent particle clustering and aggregation during the capture stage in order to maximize the capture rate. Elongated ferromagnetic particles can be more interesting than spherical ones due to their large magnetic moment, which facilitates their separation by magnets or the detection by optical measurement of their orientation relaxation time. Under alternating magnetic field, the rotational dynamics of elongated ferromagnetic particles results from the balance between magnetic torque that tends to align the particle axis with the field direction and viscous torque. As for their translational motion, it results from a competition between direct magnetic particle-particle interactions and solvent-flow-mediated hydrodynamic interactions. Due to particle anisotropy, this may lead to intricate translation-rotation couplings. Using numerical simulations and theoretical modeling of the system, we show that two ellipsoidal magnetic particles, initially in a head-to-tail attractive configuration resulting from their remnant magnetization, can repel each other due to hydrodynamic interactions when alternating field is operated. The separation takes place in a range of low frequencies f_(c1) < f < f_(c2). The upper frequency limit f_(c2)τ_r ≈ 0.04 (where τ_r is the rotation time scale) depends weakly on the ratio of magnetic field to particle magnetization strength, whereas f_(c1) tends to zero when this ratio increases.
机译:在用于检测和剂量靶向分子的磁性颗粒的应用中,在捕获阶段期间防止颗粒聚类和聚集是重大重要性,以便最大化捕获率。由于其大磁矩,细长的铁磁颗粒可以比球形更有趣,这有利于磁体分离或通过光学测量其取向松弛时间的检测。在交替磁场下,细长铁磁粒子的旋转动态由磁力扭矩之间的平衡导致倾向使粒子轴与场方向和粘性扭矩对准。至于其平移运动,它是由直接磁性粒子颗粒相互作用和溶剂流动介导的流体动力学相互作用之间的竞争来实现的。由于颗粒各向异性,这可能导致复杂的平移旋转联轴器。利用系统的数值模拟和理论建模,我们表明,由于当操作交替场时,两个椭圆磁性颗粒最初可以在导致的磁阻磁化引起的头部磁性化磁化构型中。分离在低频f_(c1)

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  • 来源
    《PHYSICAL REVIEW E》 |2017年第6期|062611.1-062611.11|共11页
  • 作者单位

    Laboratoire de Genie Chimique Universite de Toulouse CNRS INPT UPS Toulouse France;

    Laboratoire de Physique de la Matiere Condensee Nice France;

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