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Thermal effects on Co/Mo2C multilayer mirrors studied by soft x-ray standing wave enhanced photoemission spectroscopy

机译:软X射线驻波增强光发射光谱法研究Co / Mo2C多层镜的热效应

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摘要

Here is presented the spectroscopic study of the evolution of the first buried interfaces of a B4C capped Co/Mo_2C multilayer mirror induced by thermal treatment up to 600℃. This kind of study is typically performed to simulate the response of multilayer optics working in extreme conditions, as for instance when irradiated by new high brilliance sources as Free Electron Lasers. In fact, the efficiency of multilayers is related to the optical contrast between the alternating high and low density layers, and then to the degree of interdiffusion and the creation or evolution of interface compounds. The presentation is focused on the spectroscopic results obtained by soft x-ray standing wave enhanced photoemission (XSW) from the Mo 3d, B 1s, C 1s, O 1s core levels by using a photon energy close to the Co L_(23) edge and corresponding to the first Bragg peak of the multilayer. The experimental results have been compared with simulations to obtain information both on the chemical state (e.g. oxidation state) and interface morphology in terms of profiles of distribution of elements and interdiffusion of B, oxidized B and C in the interface region. In summary, it is possible to conclude in favour of a good stability of the multilayer in the investigated temperature range, as confirmed by the good performance in terms of reflectivity. These results confirm the usefulness of XSW for this kind analysis of multilayer optics.
机译:此处介绍了在高达600℃的温度下热处理引起的B4C封盖的Co / Mo_2C多层反射镜的第一掩埋界面演变的光谱研究。这种研究通常用于模拟在极端条件下工作的多层光学器件的响应,例如当受到新的高亮度源(如自由电子激光器)照射时。实际上,多层的效率与交替的高密度层和低密度层之间的光学对比度有关,然后与相互扩散的程度以及界面化合物的产生或演化有关。本演讲重点介绍了通过使用接近Co L_(23)边缘的光子能量从Mo 3d,B 1s,C 1s,O 1s核心能级通过软X射线驻波增强光发射(XSW)获得的光谱结果。并对应于多层的第一个布拉格峰。已将实验结果与模拟进行了比较,以获得关于化学态(例如氧化态)和界面形态的信息,包括元素分布和界面区域中B,氧化的B和C相互扩散的分布图。总之,可以得出结论,在所研究的温度范围内,多层具有良好的稳定性,这由反射率方面的良好性能所证实。这些结果证实了XSW在这种多层光学分析中的有用性。

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  • 来源
  • 会议地点 Prague(CZ)
  • 作者单位

    Istituto Officina dei Materiali IOM-CNR Laboratorio TASC, SS 14 km 163,5,1-34149 Basovizza, Trieste, Italy;

    Istituto Officina dei Materiali IOM-CNR Laboratorio TASC, SS 14 km 163,5,1-34149 Basovizza, Trieste, Italy;

    Sincrotrone Trieste S.C.p.A., Strada Statale 14 - km 163,5,1-34149 Basovizza, Trieste Italy;

    Istituto Officina dei Materiali IOM-CNR Laboratorio TASC, SS 14 km 163,5,1-34149 Basovizza, Trieste, Italy,Dipartimento di Ingegneria E.Ferrari, Universita degli Studi di Modena e Reggio Emilia, Strada Vignolese 905,1-41125 Modena, Italy;

    Laboratoire de Chimie Physique-Matiere et Rayonnement, UPMC Univ Paris 06, CNRS UMR 7614, 11 rue Pierre et Marie Curie, F-75231 Paris cedex 05, France;

    Laboratoire de Chimie Physique-Matiere et Rayonnement, UPMC Univ Paris 06, CNRS UMR 7614, 11 rue Pierre et Marie Curie, F-75231 Paris cedex 05, France;

    Laboratoire de Chimie Physique-Matiere et Rayonnement, UPMC Univ Paris 06, CNRS UMR 7614, 11 rue Pierre et Marie Curie, F-75231 Paris cedex 05, France;

    Laboratoire de Chimie Physique-Matiere et Rayonnement, UPMC Univ Paris 06, CNRS UMR 7614, 11 rue Pierre et Marie Curie, F-75231 Paris cedex 05, France;

    Institute of Precision Optical Engineering, Department of Physics, Tongji University, Shanghai 200092, China;

    Institute of Precision Optical Engineering, Department of Physics, Tongji University, Shanghai 200092, China;

    Institute of Precision Optical Engineering, Department of Physics, Tongji University, Shanghai 200092, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    thermal treatment; standing waves; photoemission spectroscopy; buried interfaces; interdiffusion;

    机译:热处理;驻波光发射光谱;掩埋接口相互扩散;

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