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Magnetic exchange coupling in hard/soft ferromagnetic composite thin films of cobalt platinum/cobalt: Role of processing and structure.

机译:钴铂/钴硬/软铁磁复合薄膜中的磁交换耦合:加工和结构的作用。

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摘要

The study of magnetic exchange coupling in nanocomposites of magnetically-hard phases combined with magnetically-soft phases is important for the development of high-performance permanent magnets. The present work aimed to elucidate the microstructure-exchange coupling relationship in model hard/soft bilayers of CoPt(L10, hard)/Co(soft) in both the as-deposited and annealed states. The CoPt layer (25–100 nm) was deposited at room temperature and annealed at 700°C to develop the magnetically hard, ordered L1 0 structure prior to room-temperature deposition of Co (2.8–225 nm). The transformation from FCC to L10 in CoPt was accompanied by grain growth and evolution of a ⟨111⟩ fiber texture. The L1 0 mean domain area reached approximately one sixth of the mean grain area in nearly-fully and fully ordered CoPt. The coercivity of CoPt and the contribution of a pinning-type mechanism to the coercivity increased with increasing annealing time, concurrent with the increase in L10 fraction. In CoPt/Co bilayers, Co exhibited a ⟨0001⟩ fiber texture. For as-deposited bilayers, the exchange length of Co was close to the magnetic domain wall width for CoPt. Annealing the bilayers at 300–450°C resulted in minor microstructural changes, increased the extent or strength of coupling and thereby enhanced the reversal coherency of the bilayers such that a Co layer of twice the CoPt domain wall width was fully coupled to the CoPt. Note that in bilayers with robust coupling both phases are affected, i.e., the magnetically-hard phase is exchange-softened, while the magnetically-soft phase is exchange-hardened. In contrast to lower-temperature anneals, annealing at 500–550°C, or for extended periods at 450°C, resulted in interdiffusion of Co and CoPt, consumption of the latter and formation of two new FCC and HCP Co-Pt solid solutions. These interdiffused bilayers showed an increased reversal coherency and a highly developed out-of-film plane anisotropy. When the magnetic and microstructural data are considered together, this study shows that the properties of hard/soft nanocomposites depend not only on the dimensions of both phases, but also on the physical and magnetic characteristics of each phase. A most significant outcome of this work is the demonstration that exchange coupling may be altered, and perhaps tailored, by processing-induced changes in the interphase interface.
机译:研究硬-硬相与软-软相相结合的纳米复合材料中的磁交换耦合对于高性能永磁体的开发非常重要。本工作旨在阐明在沉积状态和退火状态下CoPt(L1 0 ,hard)/ Co(soft)模型硬/软双层中的微观结构-交换耦合关系。 CoPt层(25–100 nm)在室温下沉积,并在700°C退火以形成具有磁性的,有序的L1 0 结构,然后在室温下沉积Co(2.8–225 nm) )。 CoPt由FCC转变为L1 0 伴随晶粒长大和and111〉纤维织构的演变。在几乎完全和有序的CoPt中,L1 0 的平均畴面积达到了平均晶粒面积的大约六分之一。 CoPt的矫顽力和钉扎型机理对矫顽力的贡献随着退火时间的增加而增加,同时伴随L1 0 分数的增加。在CoPt / Co双层膜中,Co表现出〈0001〉纤维织构。对于沉积的双层,Co的交换长度接近CoPt的磁畴壁宽度。在300–450°C下对双层进行退火会导致微小的微观结构变化,增加耦合的程度或强度,从而增强双层的反向相干性,从而使两倍CoPt畴壁宽度的Co层完全耦合到CoPt。注意,在具有牢固耦合的双层中,两个相都受到影响,,即。,硬磁相被交换软化,而软磁相被交换硬化。与低温退火相反,在500–550°C或450°C下长时间退火会导致Co和CoPt相互扩散,消耗并形成两种新的FCC和HCP Co-Pt固溶体。这些相互扩散的双层显示出增加的逆相干性和高度发展的膜外平面各向异性。当同时考虑磁性和微观结构数据时,这项研究表明,硬/软纳米复合材料的性质不仅取决于两相的尺寸,还取决于每一相的物理和磁特性。这项工作的最重要成果是证明了交换耦合可以通过相间界面中加工引起的变化来改变,甚至可以定制。

著录项

  • 作者

    Kim, Jihwan.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 240 p.
  • 总页数 240
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:46:50

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