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首页> 外文期刊>Journal of Analytical Atomic Spectrometry >High resolution multielement XRF spectroscopy of extended and diffused sources with a graphite mosaic crystal based Von Hamos spectrometer
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High resolution multielement XRF spectroscopy of extended and diffused sources with a graphite mosaic crystal based Von Hamos spectrometer

机译:具有基于石墨镶嵌的VON HAMOS光谱仪的延伸和扩散源的高分辨率多元XRF光谱

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摘要

Bragg spectroscopy is a consolidated experimental method for high energy resolution X-ray measurements. However, this technique is limited to the detection of photons produced from point-like or well collimated sources and becomes quite inefficient for photons generated in extended and diffused ones; also, the possibility to perform simultaneous measurements of several X-ray lines is of great benefit when low rate signals are expected and individual angular scans require long exposure times. We present a prototype of a high resolution Highly Annealed Pyrolytic Graphite (HAPG) mosaic crystals based X-ray spectrometer, developed by the VOXES (high resolution VOn hamos X-ray spectrometer using HAPG for extended sources) collaboration at INFN Laboratories of Frascati, able to work with extended (millimetric) and isotropic sources. The spectrometer has been tested in the energy range 6-19 keV, with the aim to deliver a cost effective system having an energy resolution (FWHM) at the level of few eV, able to perform sub-eV precision measurements of single and multielement targets in a broad energy range. In this paper, the working principle of the VOXES spectrometer is presented, including a detailed description of the geometry, of the calibration methods and of the spectral fitting functions. Results of X-ray tracing simulations are compared to the experiment. The main results achieved by our spectrometer regard the peak resolutions. In particular, we report values as low as 4.02 ± 0.08 eV and 3.60 ± 0.05 eV for the Fe(Kα_(1.2)) and Cu(Kα_(1.2)) lines; for larger dynamic ranges, we report single shot spectra with Cu(Kα_(1.2)) Ni(Kβ) and Zn(Kα_(1.2)) lines with best resolution values of 5.15 ± 0.13 eV, 6.02 ± 0.24 eV and 6.20 ± 0.34 eV, respectively. Finally, we explored the capabilities of our spectrometer for energies above 15 keV, obtaining for Mo(Kα_(1.2)) and Nb(Kβ) lines resolution values of 19.44 ± 0.75 eV and 39.90 ± 1.48 eV, respectively. The proposed spectrometer has possible applications in several fields, going from fundamental physics, synchrotron radiation and X-FEL applications, medicine and industry to hadronic physics experiments, where its performances make it a fundamental tool for a series of measurements like the energies of kaonic atoms transitions, allowing to extract fundamental parameters in the low energy QCD in the strangeness sector.
机译:布拉格光谱是一种用于高能量分辨率X射线测量的综合实验方法。然而,该技术仅限于从点状或良好的准直源产生的光子的检测,并且在延伸和扩散的光子中变得非常低效率;而且,当预期低速率信号并且单独的角扫描需要长时间曝光时间时,执行几个X射线线的同时测量的可能性很大。我们提出了一种高分辨率高度退火的热解石墨(HAPG)马赛克晶体的X射线光谱仪,由Voxes(使用HAPG用于扩展来源的高分辨率von Hamos X射线光谱仪),能够在Frascati的Infn Laborators(Bapg)的合作使用扩展(毫以毫升)和各向同性来源。光谱仪已经在能量范围6-19 keV中进行了测试,目的是在少数EV的水平下提供具有能量分辨率(FWHM)的成本有效的系统,能够执行单元和多元素目标的Sub-EV精确测量在广泛的能量范围内。在本文中,介绍了Voxes光谱仪的工作原理,包括对几何形状的详细描述,校准方法和光谱拟合功能的几何形状。 X射线跟踪模拟的结果与实验相比。我们的光谱仪达到峰值分辨率的主要结果。特别是,我们将值报告为低至4.02±0.08eV和3.60±0.05 eV(Kα_(1.2))和Cu(Kα_(1.2))线;对于较大的动态范围,我们将单次拍摄光谱与Cu(Kα_(1.2))Ni(Kβ)和Zn(Kα_(1.2))线路报告,最佳分辨率为5.15±0.13eV,6.02±0.24eV和6.20±0.34eV , 分别。最后,我们探讨了光谱仪的能量,以获得高于15keV的能量,获得Mo(Kα_(1.2))和Nb(Kβ)线分辨率为19.44±0.75eV和39.90±1.48eV。该拟议的光谱仪在几个领域中具有可能的应用,从基本物理,同步辐射和X-Fel应用,医学和工业转到Hadronic物理实验,其性能使其成为一系列测量的基本工具,如Kaonic Atoms的能量过渡,允许在陌生部门中提取低能量QCD中的基本参数。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2020年第1期|155-168|共14页
  • 作者单位

    Laboratori Nazionali di Frascati INFN Via E. Fermi 40 00044 Frascati Rome Italy;

    Fondazione Policlinico Vniversitario A. Gemelli IRCCS Rome Italy Universita Cattolica del Sacro Cuore Rome Italy Laboratori Nazionali di Frascati INFN Via E. Fermi 40 00044 Frascati Rome Italy;

    Laboratori Nazionali di Frascati INFN Via E. Fermi 40 00044 Frascati Rome Italy;

    Laboratori Nazionali di Frascati INFN Via E. Fermi 40 00044 Frascati Rome Italy;

    Laboratori Nazionali di Frascati INFN Via E. Fermi 40 00044 Frascati Rome Italy Fondazione Policlinico Vniversitario A. Gemelli IRCCS Rome Italy;

    Stefan-Meyer-Institut fuer Subatomare Physik Vienna Austria;

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