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Partially coherent X-ray wavefront propagation simulations including grazing-incidence focusing optics

机译:部分相干X射线波前传播模拟,包括掠入射聚焦光学器件

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X-ray beamlines in modern synchrotron radiation sources make extensive use of grazing-incidence reflective optics, in particular Kirkpatrick–Baez elliptical mirror systems. These systems can focus the incoming X-rays down to nanometer-scale spot sizes while maintaining relatively large acceptance apertures and high flux in the focused radiation spots. In low-emittance storage rings and in free-electron lasers such systems are used with partially or even nearly fully coherent X-ray beams and often target diffraction-limited resolution. Therefore, their accurate simulation and modeling has to be performed within the framework of wave optics. Here the implementation and benchmarking of a wave-optics method for the simulation of grazing-incidence mirrors based on the local stationary-phase approximation or, in other words, the local propagation of the radiation electric field along geometrical rays, is described. The proposed method is CPU-efficient and fully compatible with the numerical methods of Fourier optics. It has been implemented in the Synchrotron Radiation Workshop (SRW) computer code and extensively tested against the geometrical ray-tracing code SHADOW. The test simulations have been performed for cases without and with diffraction at mirror apertures, including cases where the grazing-incidence mirrors can be hardly approximated by ideal lenses. Good agreement between the SRW and SHADOW simulation results is observed in the cases without diffraction. The differences between the simulation results obtained by the two codes in diffraction-dominated cases for illumination with fully or partially coherent radiation are analyzed and interpreted. The application of the new method for the simulation of wavefront propagation through a high-resolution X-ray microspectroscopy beamline at the National Synchrotron Light Source II (Brookhaven National Laboratory, USA) is demonstrated.
机译:现代同步加速器辐射源中的X射线束线充分利用了掠入射反射光学器件,特别是Kirkpatrick-Baez椭圆镜系统。这些系统可以将入射的X射线聚焦到纳米级光斑尺寸,同时在聚焦的辐射光斑中保持相对较大的接收孔径和高通量。在低发射率的存储环和自由电子激光器中,此类系统与部分或什至几乎完全相干的X射线束一起使用,并且通常以衍射极限分辨率为目标。因此,必须在波动光学的框架内进行精确的仿真和建模。在此描述了基于局部静止相位近似或换句话说辐射电场沿几何射线的局部传播的用于模拟掠入射反射镜的波光学方法的实现和基准。所提出的方法是CPU有效的,并且与傅立叶光学的数值方法完全兼容。它已在同步辐射车间(SRW)的计算机代码中实现,并针对几何射线跟踪代码SHADOW进行了广泛的测试。已针对在镜孔处无衍射或有衍射的情况进行了测试模拟,包括用理想透镜很难近似掠入射镜的情况。在没有衍射的情况下,SRW和SHADOW模拟结果之间的一致性很好。分析和解释了在以衍射为主的情况下,使用完全或部分相干辐射进行照明时,两个代码所获得的模拟结果之间的差异。演示了这种新方法在国家同步加速器光源II(美国布鲁克海文国家实验室)上通过高分辨率X射线显微光谱束线模拟波前传播的应用。

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