首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Zone plate-based full-field transmission X-ray microscopy beamline design at nearly diffraction-limited synchrotron radiation facility
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Zone plate-based full-field transmission X-ray microscopy beamline design at nearly diffraction-limited synchrotron radiation facility

机译:基于区的全场变速器X射线显微镜光束线设计几乎衍射限量的同步辐射设施

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With the development of full-field transmission X-ray microscopy (TXM) for research in biology, life science, material science and physics, zone plate-based full-field TXM is becoming a powerful tool for obtaining quantitative internal structural and chemical information at the nanoscale when combined with spectroscopic imaging. For the TXM beamline design, the best choice is to match the phase space needed by the zone plate from the source point. However, for the nearly diffraction-limited synchrotron radiation sources, it is not easy to fully match the needed phase space due to its low-emittance. Using redshift radiation from an undulator, under consideration of experimental requirements and the heat load effect, this paper describes the design of TXM beamline at the nearly diffraction-limited High Energy Photon Source (HEPS). In this design, not only sufficient illumination angle can be acquired, but also a nearly annular illumination can be obtained to match the illumination required for zone plate imaging. Furthermore, about two times photon flux can be obtained at source point and the photons can be fully used in this design using redshift undulator radiation. The presented design can also be informative for the same kind of beamline design at other nearly diffraction-limited synchrotron photon sources.
机译:随着全场传输X射线显微镜(TXM)的生物学,生命科学,材料科学和物理研究,区域板材的全场TXM正在成为获得定量内部结构和化学信息的强大工具结合光谱成像时纳米级。对于TXM Beamline设计,最佳选择是匹配区域板从源点的相位空间。然而,对于几乎衍射限制的同步辐射源,因此由于其低膨胀性而完全匹配所需的相位空间并不容易。在考虑实验要求和热负荷效果的情况下,利用来自波动器的红移辐射,本文介绍了在几乎衍射限量的高能量光子源(HEP)的TXM梁线的设计。在这种设计中,不仅可以获得足够的照明角,而且还可以获得几乎环形的照明以匹配区域板成像所需的照明。此外,在源点处可以获得大约两倍的光子通量,并且可以使用红移波动辐射辐射在该设计中充分使用光子。所提出的设计也可以在其他几乎衍射限制的同步rotron光子源上提供相同类型的光束线设计。

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