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Energy-loss magnetic chiral dichroism (EMCD): Magnetic chiral dichroism in the electron microscope

机译:能量损失的磁性手性二色性(EMCD):电子显微镜中的磁性手性二色性

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摘要

A new technique called energy-loss magnetic chiral dichroism (EMCD) has recently been developed [P. Schattschneider, et al. Nature 441, 486 (2006)] to measure magnetic circular dichroism in the transmission electron microscope (TEM) with a spatial resolution of 10 nm. This novel technique is the TEM counterpart of x-ray magnetic circular dichroism, which is widely used for the characterization of magnetic materials with synchrotron radiation. In this paper we describe several experimental methods that can be used to measure the EMCD signal [P. Schattschneider, et al. Nature 441, 486 (2006); C. Hébert, et al. Ultramicroscopy 108(3), 277 (2008); B. Warot-Fonrose, et al. Ultramicroscopy 108(5), 393 (2008); L. Calmels, et al. Phys. Rev. B 76, 060409 (2007); P. van Aken, et al. Microsc. Microanal. 13(3), 426 (2007)] and give a review of the recent improvements of this new investigation tool. The dependence of the EMCD on several experimental conditions (such as thickness, relative orientation of beam and sample, collection and convergence angle) is investigated in the transition metals iron, cobalt, and nickel. Different scattering geometries are illustrated; their advantages and disadvantages are detailed, together with current limitations. The next realistic perspectives of this technique consist of measuring atomic specific magnetic moments, using suitable spin and orbital sum rules, [L. Calmels, et al. Phys. Rev. B 76, 060409 (2007); J. Rusz, et al. Phys. Rev. B 76, 060408 (2007)] with a resolution down to 2 to 3 nm
机译:最近开发了一种称为能量损失磁手性二色性(EMCD)的新技术[P. Schattschneider等。 Nature 441,486(2006)],以10纳米的空间分辨率在透射电子显微镜(TEM)中测量磁性圆二色性。这项新技术是X射线磁性圆二色性的TEM对应物,广泛用于同步加速器辐射对磁性材料的表征。在本文中,我们描述了几种可用于测量EMCD信号的实验方法。 Schattschneider等。自然441,486(2006); C.Hébert等。超显微术108(3),277(2008); B.Warot-Fonrose等。超显微学108(5),393(2008); L. Calmels等。物理B 76,060409(2007); P.van Aken等。 Microsc。微肛门。 13(3),426(2007)],并回顾了此新调查工具的最新改进。在过渡金属铁,钴和镍中,研究了EMCD对几种实验条件(例如厚度,光束和样品的相对方向,收集和会聚角)的依赖性。说明了不同的散射几何形状。详细介绍了它们的优缺点以及当前的局限性。这项技术的下一个现实观点是,使用合适的自旋和轨道求和规则来测量原子比磁矩。 Calmels等。物理B 76,060409(2007); J.Rusz等。物理Rev. B 76,060408(2007)],分辨率低至2至3 nm

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