Breckling Sean, Kozioziemski Bernard, Dresselhaus-Marais Leora, Gonzalez Arnulfo, Williams Ajanaé, Simons Hugh, Chow Paul, Howard Marylesa
Signal Processing and Applied Mathematics, Nevada National Security Site (NNSS), NV, USA.
Lawrence Livermore National Laboratory, Physics Division, Livermore, CA 94550, USA.
J Synchrotron Radiat. 2022 Jul 1;29(Pt 4):947-956. doi: 10.1107/S1600577522004039. Epub 2022 May 18.
Compound refractive lenses (CRLs) are established X-ray focusing optics, and are used to focus the beam or image the sample in many beamlines at X-ray facilities. While CRLs are quite established, the stack of single lens elements affords a very small numerical aperture because of the thick lens profile, making them far more difficult to align than classical optical lenses that obey the thin-lens approximation. This means that the alignment must be very precise and is highly sensitive to changes to the incident beam, often requiring regular readjustments. Some groups circumvent the full realignment procedure by using engineering controls (e.g. mounting optics) that sacrifice some of the beam's focusing precision, i.e. spot size, or resolution. While these choices minimize setup time, there are clear disadvantages. This work presents a new automated approach to align CRLs using a simple alignment apparatus that is easy to adapt and install at different types of X-ray experiments or facilities. This approach builds on recent CRL modeling efforts, using an approach based on the Stochastic Nelder-Mead (SNM) simplex method. This method is outlined and its efficacy is demonstrated with numerical simulation that is tested in real experiments conducted at the Advanced Photon Source to confirm its performance with a synchrotron beam. This work provides an opportunity to automate key instrumentation at X-ray facilities.
复合折射透镜(CRLs)是成熟的X射线聚焦光学元件,在X射线设施的许多光束线中用于聚焦光束或对样品成像。虽然CRLs已经相当成熟,但由于单个透镜元件堆叠后的透镜轮廓较厚,其数值孔径非常小,这使得它们比遵循薄透镜近似的传统光学透镜更难对准。这意味着对准必须非常精确,并且对入射光束的变化高度敏感,通常需要定期重新调整。一些团队通过使用牺牲部分光束聚焦精度(即光斑尺寸或分辨率)的工程控制措施(如安装光学元件)来规避完全重新对准的过程。虽然这些选择将设置时间减到最少,但也存在明显的缺点。这项工作提出了一种使用简单对准装置自动对准CRLs的新方法,该装置易于在不同类型的X射线实验或设施中进行改装和安装。这种方法基于最近的CRL建模工作,采用基于随机 Nelder-Mead(SNM)单纯形法的方法。本文概述了该方法,并通过数值模拟证明了其有效性,该模拟在先进光子源进行的实际实验中进行了测试,以确认其在同步加速器光束下的性能。这项工作为X射线设施关键仪器的自动化提供了契机。