论文标题

放牧的发病率-X射线荧光,用于有序纳米结构的维度和元素表征

Grazing incidence-X-ray fluorescence for a dimensional and elemental characterization of well-ordered nanostructures

论文作者

Hönicke, Philipp, Andrle, Anna, Kayser, Yves, Nikolaev, Konstantin V., Probst, Jürgen, Scholze, Frank, Soltwisch, Victor, Weimann, Thomas, Beckhoff, Burkhard

论文摘要

良好控制的有序纳米结构在表面上的重要性越来越重要,这是对现有计量技术的挑战。为了开发此类纳米结构并监视复杂的处理约束的制造,纳米结构的维度重建和其组成的表征(理想情况下是定量表征)。在这项工作中,我们提出了一种基于X射线荧光的软方法,该方法允许同时解决这两种要求。通过应用放牧的X射线荧光技术,从而利用X射线驻波场效应,可以针对其尺寸和组成特性以高灵敏度研究纳米结构。通过改变刺激辐射的入射角,元素敏感的荧光辐射是从纳米对象内部的不同区域发出的。通过应用适当的建模方案,这些数据集可用于确定纳米结构特征。我们通过执行由Si $ _3 $ n $ _4 $制成的层状光栅进行元素敏感的重建来证明这些功能,其中O-K $α$和N-K $α$荧光发射的GIXRF数据可以使薄薄的氧化物层在砂纸结构的表面上重建。此外,我们还将该技术还用于三维纳米结构,并以定量方式得出尺寸和组成参数。

The increasing importance of well-controlled ordered nanostructures on surfaces represents a challenge for existing metrology techniques. To develop such nanostructures and monitor complex processing constraints fabrication, both a dimensional reconstruction of nanostructures and a characterization (ideally a quantitative characterization) of their composition is required. In this work, we present a soft X-ray fluorescence-based methodology that allows both of these requirements to be addressed at the same time. By applying the grazing-incidence X-ray fluorescence technique and thus utilizing the X-ray standing wave field effect, nanostructures can be investigated with a high sensitivity with respect to their dimensional and compositional characteristics. By varying the incident angles of the exciting radiation, element-sensitive fluorescence radiation is emitted from different regions inside the nanoobjects. By applying an adequate modeling scheme, these datasets can be used to determine the nanostructure characteristics. We demonstrate these capabilities by performing an element-sensitive reconstruction of a lamellar grating made of Si$_3$N$_4$, where GIXRF data for the O-K$α$ and N-K$α$ fluorescence emission allows a thin oxide layer to be reconstructed on the surface of the grating structure. In addition, we employ the technique also to three dimensional nanostructures and derive both dimensional and compositional parameters in a quantitative manner.

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