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Kossel Effect in Periodic Multilayers

DOI:10.1166/jnn.2019.16472 期刊:Journal of Nanoscience and Nanotechnology 出版年份:2019 更新时间:2025-09-04 15:30:14
摘要: The Kossel effect is the diffraction by a periodically structured medium, of the characteristic X-ray radiation emitted by the atoms of the medium. We show that multilayers designed for X-ray optics applications are convenient periodic systems to use in order to produce the Kossel effect, modulating the intensity emitted by the sample in a narrow angular range defined by the Bragg angle. We also show that excitation can be done by using photons (X-rays), electrons or protons (or charged particles), under near normal or grazing incident geometries, which makes the method relatively easy to implement. The main constraint comes from the angular resolution necessary for the detection of the emitted radiation. This leads to small solid angles of detection and long acquisition times to collect data with sufficient statistical significance. Provided this difficulty is overcome, the comparison or fit of the experimental Kossel curves, i.e., the angular distributions of the intensity of an emitted radiation of one of the element of the periodic stack, with the simulated curves enables getting information on the depth distribution of the elements throughout the multilayer. Thus the same kind of information obtained from the more widespread method of X-ray standing wave induced fluorescence used to characterize stacks of nanometer period, can be obtained using the Kossel effect.
作者: Karine Le Guen,Jean-Michel André,Meiyi Wu,Vita Ilakovac,Franck Delmotte,Sébatien de Rossi,Fran?oise Bridou,Evgueni Meltchakov,Angelo Giglia,Stefano Nannarone,Zhanshan Wang,Qiushi Huang,Zhong Zhang,Jingtao Zhu,Yuchun Tu,Yanyan Yuan,Ian Vickridge,Didier Schmaus,Emrick Briand,Sébastien Steydli,Philippe Walter,Philippe Jonnard
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Investigating the Kossel effect in periodic multilayers for X-ray optics applications to understand the depth distribution of elements within the multilayer.

The Kossel effect provides a versatile method for analyzing periodic multilayers, offering insights into the depth distribution of elements and interface composition. Despite challenges related to angular resolution and acquisition times, the method complements other techniques like X-ray standing wave induced fluorescence and can be applied with various excitation sources.

The main constraints include the need for high angular resolution leading to small solid angles of detection and long acquisition times. The technique also requires precise alignment and suffers from poor counting statistics with certain excitation methods.

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