Sun Baoning, Li Qinming, Yang Chuan, Hu Kai, Xu Zhongmin, Dong Xiaohao, Zhang Weiqing, Yang Xueming
Dalian Coherent Light Source and State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, People's Republic of China.
Institude of Advanced Science Facilities, Shenzhen, People's Republic of China.
J Synchrotron Radiat. 2025 Jan 1;32(Pt 1):46-56. doi: 10.1107/S1600577524011469.
Free-electron laser (FEL) facilities operating at MHz repetition rates can emit lasers with average powers reaching hundreds of watts. Partial absorption of this power induces thermal deformation of a few micrometres on the mirror surface. Such deformation degrades the characteristics of the reflected photon beam, leading to focal spot aberrations and wavefront distortions that fail to meet experimental requirements. A robust method is necessary to correct the mirror surface shape to meet the Maréchal criterion. This paper proposes a thermal deformation compensation scheme for offset mirrors operating at MHz repetition rates using a piezoelectric deformable mirror. The mirror is side-mounted with slots filled with an indium-gallium alloy, which house copper tubes for water cooling. Eighteen groups of piezo actuators are symmetrically attached to the top and bottom surfaces. The scheme incorporates finite-element analysis for simulation and post-processing verification, utilizing a differential evolution (DE) algorithm for global optimization. The DE algorithm effectively addresses the voltage constraints that the traditional singular value decomposition algorithm cannot handle. Under an X-ray wavelength of 1 nm, the peak-to-valley (PV) height error of the mirror was reduced from 1340.8 nm to 1.1 nm, and the root-mean-square (RMS) height error decreased from 859.1 nm to 0.18 nm. The slope error was corrected to 154 nrad PV and 24 nrad RMS. Significant results were also achieved at an X-ray wavelength of 3 nm. Wave-optics simulations verified the reliability of this approach, and effects on key mirror parameters and conditions were systematically analysed.
工作在兆赫兹重复频率的自由电子激光(FEL)装置能够发射平均功率达到数百瓦的激光。这种功率的部分吸收会在镜面上引起几微米的热变形。这种变形会降低反射光子束的特性,导致焦斑像差和波前畸变,无法满足实验要求。需要一种可靠的方法来校正镜面形状以满足马雷夏尔准则。本文提出了一种使用压电变形镜对工作在兆赫兹重复频率的偏置镜进行热变形补偿的方案。该镜侧面安装有填充铟镓合金的狭槽,狭槽内装有用于水冷的铜管。十八组压电致动器对称地附着在顶面和底面。该方案结合了有限元分析进行模拟和后处理验证,利用差分进化(DE)算法进行全局优化。DE算法有效地解决了传统奇异值分解算法无法处理的电压约束问题。在1纳米的X射线波长下,镜面的峰谷(PV)高度误差从1340.8纳米降低到1.1纳米,均方根(RMS)高度误差从859.1纳米降低到0.18纳米。斜率误差被校正为154纳弧度PV和24纳弧度RMS。在3纳米的X射线波长下也取得了显著成果。波光学模拟验证了该方法的可靠性,并系统地分析了对关键镜面参数和条件的影响。