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High resolution, high efficiency multilayer Fresnel zone plates for soft and hard X-rays

机译:高分辨率和高效率的多层菲涅耳波带片,用于软X射线和硬X射线

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X-ray microscopy enables high spatial resolutions, high penetration depths and characterization of a broad range of materials. Calculations show that nanometer range resolution is achievable in the hard X-ray regime by using Fresnel zone plates (FZPs) if certain conditions are satisfied. However, this requires, among other things, aspect ratios of several thousands. The multilayer (ML) type FZPs, having virtually unlimited aspect ratios, are strong candidates to achieve single nanometer resolutions. Our research is focused on the fabrication of ML-FZPs which encompasses deposition of multilayers over a glass fiber via the atomic layer deposition (ALD), which is subsequently sliced in the optimum thickness for the X-ray energy by a focused ion beam (FIB). We recently achieved aberration free imaging by resolving 21 nm features with an efficiency of up to 12.5 %, the highest imaging resolution achieved by an ML-FZP. We also showed efficient focusing of 7.9 keV X-rays down to 30 nm focal spot size (FWHM). For resolutions below ~10 nm, efficiencies would decrease significantly due to wave coupling effects. To compensate this effect high efficiency, low stress materials have to be researched, as lower intrinsic stresses will allow fabrication of larger FZPs with higher number of zones, leading to high light intensity at the focus. As a first step we fabricated an ML-FZP with a diameter of 62 um, an outermost zone width of 12 nm and 452 active zones. Further strategies for fabrication of high resolution high efficiency multilayer FZPs will also be discussed.
机译:X射线显微镜可以实现高空间分辨率,高穿透深度和多种材料的特性。计算表明,如果满足某些条件,则可以通过使用菲涅耳波带片(FZP)在硬X射线状态下实现纳米范围的分辨率。然而,这尤其需要数千的长宽比。具有几乎不受限制的长宽比的多层(ML)型FZP是实现单纳米分辨率的理想选择。我们的研究专注于ML-FZP的制造,该技术包括通过原子层沉积(ALD)在玻璃纤维上沉积多层膜,然后通过聚焦离子束(FIB)将其切成X射线能量的最佳厚度)。我们最近通过解析21 nm的特征实现了无像差成像,效率高达12.5%,这是ML-FZP实现的最高成像分辨率。我们还展示了有效的7.9 keV X射线聚焦,焦点可缩小至30 nm焦点尺寸(FWHM)。对于低于〜10 nm的分辨率,由于波耦合效应,效率将大大降低。为了补偿这种效果,需要研究低应力材料,因为较低的固有应力将允许制造具有更多区域数量的较大FZP,从而导致焦点处的光强度较高。第一步,我们制造了直径为62 um,最外面的区域宽度为12 nm和452个活动区域的ML-FZP。还将讨论制造高分辨率高效多层FZP的其他策略。

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