Zhang Ximing, Guo Zhi, Meng Xiangyu, Chen Jiahua, Ji Zhan, Jin Zuanming, Zhang Xiangzhi, Wang Yong, Tai Renzhong
Shanghai Institute of Applied Physics, Chinese Academy of Sciences, 2019 Jialuo Highway, Jiading District, Shanghai 201800, People's Republic of China.
Shanghai University, 99 Shangda Road, Baoshan District, Shanghai 200444, People's Republic of China.
J Synchrotron Radiat. 2020 Jul 1;27(Pt 4):870-882. doi: 10.1107/S1600577520006554. Epub 2020 Jun 8.
A self-amplified spontaneous emission free-electron laser (FEL) is under construction at the Shanghai Soft X-ray Free-Electron Facility. Therefore, it is necessary to develop a suitable diagnostic tool capable of resolving the natural emission band of each FEL pulse. Thus, an online spectrometer with a plane mirror and plane variable-line-spacing grating at grazing incidence to monitor each single FEL pulse during the propagation of FEL radiation has been designed and is presented in this work. The method of ray tracing is used for monitoring incident radiation in order to understand spectral characteristics, and SHADOW, an X-ray optics simulation tool, and SRW, an X-ray optics wavefront tool, are applied to study the resolving power and focusing properties of the grating. The designed resolving power is ∼3 × 10 at 620 eV. Meanwhile, the effect of the actual slope error of mirrors on the ray-tracing results is also discussed. In order to provide further optimization for the choice of grating, a comparison of resolving powers between 2000 lines mm and 3000 lines mm gratings at different energies is analyzed in detail and radiation damage of mirrors as well as parameters such as the first-order diffraction angle β, the exit-arm length r, and the tilt angle θ between the focal plane and the diffraction arm are studied and optimized. This work has provided comprehensive designing methods and detailed data for the design of diagnostic spectrometers in soft X-ray FELs and will be favorable to the design of other similar instruments.
上海软X射线自由电子装置正在建造一台自放大自发辐射自由电子激光(FEL)。因此,有必要开发一种合适的诊断工具,能够分辨每个FEL脉冲的自然发射谱带。于是,本文设计并展示了一种在线光谱仪,它在掠入射时采用平面镜和平面变线间距光栅,用于在FEL辐射传播过程中监测每个单个FEL脉冲。利用光线追迹方法监测入射辐射以了解光谱特性,并应用X射线光学模拟工具SHADOW和X射线光学波前工具SRW研究光栅的分辨能力和聚焦特性。在620 eV时设计的分辨能力约为3×10 。同时,还讨论了反射镜实际斜率误差对光线追迹结果的影响。为了进一步优化光栅的选择,详细分析了2000线/mm和3000线/mm光栅在不同能量下分辨能力的比较,并研究和优化了反射镜的辐射损伤以及诸如一级衍射角β、出射臂长度r和焦平面与衍射臂之间的倾斜角θ等参数。这项工作为软X射线FEL诊断光谱仪的设计提供了全面的设计方法和详细数据,将有利于其他类似仪器的设计。