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Electron energy-loss magnetic chiral dichroism of magnetic iron film affected by an under layer in a double-layer structure

机译:双层结构中受底层影响的磁性铁膜的电子能量损失磁性手性二色性

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摘要

The electron energy-loss magnetic chiral dichroism (EMCD) technique has been generally applied to single-phase magnetic crystals while rarely used for composite structures. It is mainly due to the lack of in-depth understanding of EMCD in the latter case where an additional phase may present under or above the investigated magnetic phase in the electron beam path. Here, we report EMCD signals acquired on a 15-nm-thick magnetic iron film with different thicknesses of the MgO substrate underlayer. By comparison, for areas with total thicknesses of t=0.59 lambda and t=1.02 lambda expressed with the mean free inelastic path of electron lambda, the relative dichroic signals at the Fe-L3 edge are 3.8%+/- 1.0% and 3.5%+/- 1.6%, respectively, demonstrating no significant difference within the error range. However, the dichroic signal intensity at the Fe-L2 edge peak is 77.6% larger in the thinner area of t=0.59 lambda. Accordingly, the extracted mL/ms ratio of Fe 3d moments is 63% smaller in the thinner area even after the plural scattering is removed. Then, we confirm that the presence of an additional nonmagnetic phase under a magnetic iron crystal can noticeably affect the quantified value of the mL/ms ratio of iron moment determined from the EMCD measurements. Furthermore, the larger thickness of the underlayer may result in relatively higher valuation of the mL/ms ratio of the upper layer. A correction method, considering the different influence of the underlayer on the Fe-L3 and L2 edges, is in demand for developing potential applications of the EMCD technique to such composite nanomaterial systems.
机译:电子能量损失磁性手性二色性(EMCD)技术已普遍应用于单相磁性晶体,而很少用于复合结构。这主要是由于在后一种情况下缺少对EMCD的深入了解,在后者的情况下,在电子束路径中,在研究的磁相之下或之上可能会出现一个附加相。在这里,我们报告在具有不同厚度的MgO衬底底层的15纳米厚的磁性铁膜上获得的EMCD信号。相比之下,对于总厚度为t = 0.59λ和t = 1.02λ的区域,用电子λ的平均自由非弹性路径表示,Fe-L3边缘的相对二向色性信号为3.8%+ /-1.0%和3.5% +/- 1.6%,分别表明误差范围内无显着差异。但是,在t = 0.59λ的较薄区域中,Fe-L2边缘峰处的二向色性信号强度大77.6%。因此,即使在去除了多个散射之后,在较薄的区域中提取的Fe 3d矩的mL / ms比也小了63%。然后,我们确认磁性铁晶体下存在额外的非磁性相会明显影响由EMCD测量确定的铁矩的mL / ms比的定量值。此外,底层的较大厚度可导致相对较高的上层mL / ms比值。考虑到底层对Fe-L3和L2边缘的不同影响,需要一种校正方法来开发EMCD技术在这种复合纳米材料系统中的潜在应用。

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  • 来源
    《Applied Physics Letters》 |2019年第11期|112401.1-112401.5|共5页
  • 作者单位

    Chongqing Univ Coll Mat Sci & Engn Chongqing 400044 Peoples R China;

    Univ Toulouse CEMES CNRS UPR 8011 F-31055 Toulouse France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 04:35:06

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