Mills D M
Advanced Photon Source, Argonne National Laboratory, 9700 South Cass Avenue, Argonne, IL 60439, USA.
J Synchrotron Radiat. 1997 May 1;4(Pt 3):117-24. doi: 10.1107/S0909049596015889.
Third-generation hard-X-ray synchrotron radiation sources simultaneously provide both a need and an opportunity for the development of new short-wavelength optical components. The high power and power densities of the insertion-device-produced X-ray beams have forced researchers to consider what may seem like exotic approaches, such as cryogenically cooled silicon and highly perfect diamond crystals, to mitigate thermal distortions in the first optical components. Once the power has been successfully filtered while maintaining the high beam brilliance, additional specialized optical components can be inserted into the monochromatic beam that take advantage of that brilliance. This paper reviews the performance of such optical components that have been designed, fabricated and tested at the Advanced Photon Source, starting with high-heat-load components and followed by examples of several specialized devices, such as an meV resolution (in-line) monochromator, a high-energy X-ray phase retarder and a phase-zone plate with submicrometer focusing capability.
第三代硬X射线同步辐射源为新型短波长光学元件的开发同时带来了需求和机遇。插入式设备产生的X射线束的高功率和功率密度迫使研究人员考虑采用一些看似奇特的方法,如低温冷却的硅和高度完美的金刚石晶体,以减轻首个光学元件中的热畸变。一旦在保持高光束亮度的同时成功过滤了功率,就可以将额外的专门光学元件插入单色光束中,利用该亮度。本文回顾了在先进光子源设计、制造和测试的此类光学元件的性能,首先是高热负载元件,然后是几个专门设备的示例,如毫电子伏特分辨率(在线)单色仪、高能X射线相位延迟器和具有亚微米聚焦能力的相带板。