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首页> 外文期刊>Physica, B. Condensed Matter >Mesoscopic magnetism and the phenomenon of exchange anisotropy: MBE grown Cu(110)/Ni80Fe20/Fe50Mn50 bilayers with corrugated interfaces
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Mesoscopic magnetism and the phenomenon of exchange anisotropy: MBE grown Cu(110)/Ni80Fe20/Fe50Mn50 bilayers with corrugated interfaces

机译:介观磁性和交换各向异性现象:MBE生长的具有波纹界面的Cu(110)/ Ni80Fe20 / Fe50Mn50双层

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A comprehensive analysis of the giant in-plane uniaxial magnetic anisotropy of exchange biased molecular beam epitaxy grown Cu(110)/Ni80Fe20/Fe50Mn50 bilayers, discovered by Jungblut et at. (J. Appl. Phys. 75 (1994) 6659) is presented. Cu(110)/Ni80Fe20 samples have a uniaxial in-plane volume anisotropy with a [0 01] easy axis direction. Covering such ferromagnetic (F) layers with an anti ferromagnetic (AF) Fe50Mn50 layer introduces an interface contribution to the uniaxial anisotropy that leads to an [1 (1) over bar0] easy axis direction for F layer thicknesses below a critical value of 4 nm, and to an enhancement of the [001] anisotropy for larger thicknesses. The effect occurs only for Fe50Mn50 layers that are thicker than the minimum thickness that is required to obtain the exchange bias effect. From in situ low-energy electron diffraction (LEED) and scanning tunneling microscopy (STM) the Ni80Fe20 surface is shown to be corrugated, viz. in the form of elongated 2-4 monolayer high mesas at a distance of typically 4-8 nm in the [001] direction and a length along the [1 (1) over bar0] direction of 25-60 nm. We show that this novel mesoscopic magnetic effect can be explained from the magnetically uncompensated nature of the AF (I 10) surface in combination with the corrugation of the F/AF interface. The spatially varying sign of the F-AF exchange coupling then leads to a preferred F layer magnetization direction that is perpendicular to the staggered AF magnetization. The remarkable change of sign of the interface anisotropy indicates that in the thin and thick F layer regimes the staggered AF magnetizations that are frozen in during the growth are different by a 90degrees rotation. We tentatively explain this from the kinetics of magnetic structure transformations in the bilayer during the growth process. The local exchange bias interaction parameter obtained from a quantitative analysis is J(eb,loc) approximate to 2.5-10 mJ/m(2), which is close to the theoretical upper limit and is two orders of magnitude larger than the sample averaged interaction parameter, J(eb), obtained from the exchange bias field. This provides the first direct experimental proof that the observed value of J(eb) of an AF/F bilayer can be the result of much larger but almost completely averaged out opposing local AF-F exchange interactions. The paper contains a brief overview of the recent developments in the field of mesoscopic magnetism. (C) 2002 Elsevier Science B.V. All rights reserved. [References: 63]
机译:由Jungblut等人发现,对交换偏置分子束外延生长的Cu(110)/ Ni80Fe20 / Fe50Mn50双层薄膜的巨大面内单轴磁各向异性的综合分析。 (J.Appl.Phys.75(1994)6659)被提出。 Cu(110)/ Ni80Fe20样品具有[0 01]易轴方向的单轴面内体积各向异性。用反铁磁(AF)Fe50Mn50层覆盖此类铁磁(F)层会导致界面对单轴各向异性的贡献,导致F层厚度低于4 nm临界值时,[bar0超过bar0]易轴方向,并提高了[001]各向异性的厚度。仅当Fe50Mn50层的厚度大于获得交换偏压效应所需的最小厚度时,才会产生这种效应。根据原位低能电子衍射(LEED)和扫描隧道显微镜(STM),Ni80Fe20表面呈波纹状,即。呈细长的2-4单层高台面形式,在[001]方向上的距离通常为4-8 nm,沿着[1(1)的bar0]方向的长度为25-60 nm。我们表明,可以从AF(I 10)表面的磁性未补偿性质与F / AF界面的波纹相结合来解释这种新颖的介观磁效应。 F-AF交换耦合的空间变化的符号然后导致垂直于交错的AF磁化的优选的F层磁化方向。界面各向异性符号的显着变化表明,在薄F层和厚F层中,在生长过程中冻结的交错AF磁化量相差90度。我们从生长过程中双层中磁性结构转变的动力学来对此进行初步解释。通过定量分析获得的局部交换偏倚相互作用参数为J(eb,loc)约2.5-10 mJ / m(2),接近理论上限且比样品平均相互作用大两个数量级从交换偏差字段获得的参数J(eb)。这提供了第一个直接的实验证据,即AF / F双层的J(eb)的观测值可能是相对较大的但几乎完全平均的相对局部AF-F交换相互作用的结果。本文简要概述了介观磁学领域的最新发展。 (C)2002 Elsevier Science B.V.保留所有权利。 [参考:63]

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