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Nucleation or pinning: Dominant coercivity mechanism in exchange-coupled permanent/composite magnets

机译:成核或钉扎:交换耦合永磁体/复合磁体中的主导矫顽力机制

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The thickness dependent nucleation and pinning fields have been obtained for an exchange-coupled hard/soft/hard magnetic layered system based on a micromagnetic calculation. The calculation reveals that the coercivity mechanism is nucleation for small soft layer thickness while it is pinning for large one. The critical thickness at which the coercivity mechanism changes is generally very small. Thus the dominant coercivity mechanism in such a magnetic system is pinning rather than nucleation. Such a pinning, however, is attributed to the change of the intrinsic parameters associated with the phase change at the interface and has both attributes of the traditional nucleation and pinning. Analysis shows that this pinning mechanism is the dominant coercivity mechanism in most exchange-coupled permanent and composite magnetic materials, which is called as self-pinning in this paper. From this self-pinning some specific formulae pinning field can be derived. In particular, for sufficiently large soft grains/defects, the pinning field can be expressed as H-p-alpha H-k, where H-k = 2k/M-s is the anisotropy field and a depends on the material parameters and micromagnetic structures. These results are consistent with available experimental data. (C) 2008 Elsevier B.V. All rights reserved.
机译:基于微磁计算,已经为交换耦合的硬/软/硬磁性分层系统获得了厚度依赖的形核和钉扎场。计算结果表明,矫顽力机制是在较小的软层厚度下成核,而在固定较大的软层厚度时为成核。矫顽力机制改变的临界厚度通常很小。因此,在这种磁性系统中,主要的矫顽力机制是钉扎而不是成核。然而,这种钉扎归因于与界面处的相变相关联的固有参数的变化,并且具有传统成核和钉扎的两个属性。分析表明,这种钉扎机制是大多数交换耦合的永磁和复合磁性材料中的主要矫顽力机制,在本文中称为自钉扎。通过这种自固定,可以得出一些特定的公式固定字段。特别地,对于足够大的软晶粒/缺陷,钉扎场可以表示为H-p-αH-k,其中H-k = 2k / M-s是各向异性场,并且取决于材料参数和微磁结构。这些结果与可用的实验数据一致。 (C)2008 Elsevier B.V.保留所有权利。

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