Elemental Contrast X-ray Tomography Using Ross Filter Pairs with a Polychromatic Laboratory Source

被引:0
|
作者
Benedicta D. Arhatari
Timur E. Gureyev
Brian Abbey
机构
[1] La Trobe University,ARC Centre of Excellence in Advanced Molecular Imaging, Department of Chemistry and Physics
[2] The University of Melbourne,ARC Centre of Excellence in Advanced Molecular Imaging, School of Physics
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The majority of current laboratory based X-ray sources are polychromatic and are not tuneable. This lack of monochromaticity limits the range of applications for these sources and in particular it reduces the elemental specificity of laboratory based X-ray imaging experiments. Here we present a solution to this problem based on the use of Ross filter pairs. Although such Ross filter arrangements have been applied in proof-of-principle spectroscopy experiments, to date there have been no reports of this approach used for full-field X-ray imaging. Here we report on the experimental demonstration of Ross filter pairs being used for quasi-monochromatic, full-field imaging. This arrangement has several important benefits for laboratory based X-ray imaging including, as we demonstrate, elemental contrast enhancement. The method is demonstrated both for two-dimensional radiography and for three-dimensional X-ray tomography.
引用
收藏
相关论文
共 50 条
  • [31] Contrast enhancement in X-ray phase contrast tomography
    Pan, Adam
    Xu, Ling
    Petruccelli, Jon C.
    Gupta, Rajiv
    Singh, Bipin
    Barbastathis, George
    OPTICS EXPRESS, 2014, 22 (15): : 18020 - 18026
  • [32] Requirements for dynamical differential phase contrast x-ray imaging with a laboratory source
    Macindoe, David
    Kitchen, Marcus J.
    Irvine, Sarah C.
    Fouras, Andreas
    Morgan, Kaye S.
    PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (24): : 8720 - 8735
  • [33] Drastic Performance Improvement of a Polychromatic Cone-Beam X-Ray Fluorescence Computed Tomography (XFCT) System Using a Kilowatt-Range X-Ray Source
    Manohar, N.
    Reynoso, F.
    Cho, S.
    MEDICAL PHYSICS, 2015, 42 (06) : 3716 - 3716
  • [34] A device for X-Ray elemental mapping using annular radioisotope source
    Ahmadi, Nader
    Kavaz, Esra
    Ertugrul, Mehmet
    Ozdemir, Yuksel
    X-RAY SPECTROMETRY, 2017, 46 (06) : 486 - 491
  • [35] X-ray wavefront characterization with grating interferometry using an x-ray microfocus laboratory source
    Zhao Shuai
    Wang Ke-yi
    Cheng Guang-yu
    Shen Yuan
    Wang Yu-shan
    Zhang Lei
    ADVANCES IN METROLOGY FOR X-RAY AND EUV OPTICS IX, 2020, 11492
  • [36] Testing of X-ray Optics for Synchrotron Studies using a Laboratory Microfocus X-ray Source
    Barannikov, A. A.
    Zverev, D. A.
    Lyatun, I. I.
    Panormov, I. B.
    Rudenko, K. V.
    Snigirev, A. A.
    JOURNAL OF SURFACE INVESTIGATION, 2024, 18 (SUPPL1): : S24 - S33
  • [37] X-Ray Ptychography with a Laboratory Source
    Batey, Darren J.
    Van Assche, Frederic
    Vanheule, Sander
    Boone, Matthieu N.
    Parnell, Andrew J.
    Mykhaylyk, Oleksandr O.
    Rau, Christoph
    Cipiccia, Silvia
    PHYSICAL REVIEW LETTERS, 2021, 126 (19)
  • [38] DEMONSTRATION OF PHASE-CONTRAST X-RAY COMPUTED-TOMOGRAPHY USING AN X-RAY INTERFEROMETER
    MOMOSE, A
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1995, 352 (03): : 622 - 628
  • [39] Optimization of in-line phase contrast particle image velocimetry using a laboratory x-ray source
    Ng, I.
    Paganin, D. M.
    Fouras, A.
    JOURNAL OF APPLIED PHYSICS, 2012, 112 (07)
  • [40] Phase-contrast imaging and tomography at 60 keV using a conventional x-ray tube source
    Donath, Tilman
    Pfeiffer, Franz
    Bunk, Oliver
    Groot, Waldemar
    Bednarzik, Martin
    Gruenzweig, Christian
    Hempel, Eckhard
    Popescu, Stefan
    Hoheisel, Martin
    David, Christian
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2009, 80 (05):