Moreno Thierry
Experimental Division, Synchrotron SOLEIL, L'Orme des Merisiers, Saint-Aubain, BP 48, 91192 Gif sur Yvettes Cedex, France.
J Synchrotron Radiat. 2015 Sep;22(5):1163-9. doi: 10.1107/S1600577515010978. Epub 2015 Jul 22.
Synchrotron infrared beamlines are powerful tools on which to perform spectroscopy on microscopic length scales but require working with large bending-magnet source apertures in order to provide intense photon beams to the experiments. Many infrared beamlines use a single toroidal-shaped mirror to focus the source emission which generates, for large apertures, beams with significant geometrical aberrations resulting from the shape of the source and the beamline optics. In this paper, an optical layout optimized for synchrotron infrared beamlines, that removes almost totally the geometrical aberrations of the source, is presented and analyzed. This layout is already operational on the IR beamline of the Brazilian synchrotron. An infrared beamline design based on a SOLEIL bending-magnet source is given as an example, which could be useful for future IR beamline improvements at this facility.
同步辐射红外光束线是在微观长度尺度上进行光谱分析的强大工具,但需要使用大的弯铁源孔径,以便为实验提供强光子束。许多红外光束线使用单个环形镜来聚焦源发射,对于大孔径而言,由于源的形状和光束线光学元件,这种聚焦会产生具有显著几何像差的光束。本文提出并分析了一种针对同步辐射红外光束线优化的光学布局,该布局几乎完全消除了源的几何像差。这种布局已在巴西同步加速器的红外光束线上投入使用。以基于SOLEIL弯铁源的红外光束线设计为例,这可能对该设施未来的红外光束线改进有用。