Acta Optica Sinica, Volume. 37, Issue 4, 434001(2017)

Quantitative Calculation of Fringe Visibility in Bismuth Grating-Based X-Ray Phase-Contrast Imaging

Huang Jianheng1,2、*, Lei Yaohu1, Du Yang1, Liu Xin1, Guo Jinchuan1, Li Ji1, and Guo Baoping1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    References(25)

    [1] [1] Henke B L, Gullikson E M, Davis J C, et al. X-ray interactions: photoabsorption, scattering, transmission, and reflection at E=50-30,000 eV, Z=1-92[J]. Atomic Data and Nuclear Data Tables, 1993, 54(2): 181-342.

    [2] [2] Momose A. Demonstration of phase-contrast X-ray computed tomography using an X-ray interferometer[J]. Nuclear Instruments and Methods in Physics Research A, 1995, 352(3): 622-628.

    [3] [3] Bonse U, Hart M. An X-ray interferometer[J]. Applied Physics Letters, 1965, 6(8): 155-156.

    [4] [4] Davis T J, Gao D, Gureyev T E, et al. Phase-contrast imaging of weakly absorbing materials using hard X-rays[J]. Nature, 1995, 373(6515): 595-598.

    [5] [5] Wilkins S W, Gureyev T E, Gao D, et al. Phase-contrast imaging using polychromatic hard X-rays[J]. Nature, 1996, 384(6607): 335-338.

    [6] [6] David C, Nhammer B, Solak H H, et al. Differential X-ray phase contrast imaging using a shearing interferometer[J]. Applied Physics Letters, 2002, 81(17): 3287-3289.

    [7] [7] Pfeiffer F, Weitkamp T, Bunk O, et al. Phase retrieval and differential phase-contrast imaging with low-brilliance X-ray sources[J]. Nature Physics, 2006, 2(4): 258-261.

    [8] [8] Pfeiffer F, Bech M, Bunk O, et al. Hard X-ray dark-field imaging using a grating interferometer[J]. Nature Materials, 2008, 7(2): 134-137.

    [9] [9] Stampanoni M, Wang Z, Thüring T, et al. The first analysis and clinical evaluation of native breast tissue using differential phase-contrast mammography[J]. Investigative Radiology, 2011, 46(12): 801-806.

    [10] [10] Momose A, Yashiro W, Kido K, et al. X-ray phase imaging: from synchrotron to hospital[J]. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 2014, 372(2010): 20130023.

    [11] [11] Du Y, Liu X, Lei Y, et al. Non-absorption grating approach for X-ray phase contrast imaging[J]. Optics Express, 2011, 19(23): 22669-22674.

    [13] [13] Li Xinbin, Chen Zhiqiang, Zhang Li, et al. The status and development prospect of the diagnosis of breast cancer based on grating-based X-ray phase-contrast imaging[J]. Chinese Journal of Stereology and Image Analysis, 2015, 20(4): 305-318.

    [14] [14] Du Yang, Liu Xin, Lei Yaohu, et al. Low cost and high efficiency method for X-ray phase contrast imaging[J]. Acta Optica Sinica, 2016, 36(3): 0334001.

    [15] [15] Wang S, Margie P O, Atsushi M, et al. Experimental research on the feature of an X-ray Talbot-Lau interferometer vs. tube accelerating voltage[J]. Chinese Physics B, 2015, 24(6): 068703.

    [16] [16] Donath T, Pfeiffer F, Bunk O, et al. Phase-contrast imaging and tomography at 60 keV using a conventional X-ray tube source[J]. Review of Scientific Instruments, 2009, 80(5): 053701.

    [17] [17] David C, Bruder J, Rohbeck T, et al. Fabrication of diffraction gratings for hard X-ray phase contrast imaging[J]. Microelectronic Engineering, 2007, 84(5-8): 1172-1177.

    [18] [18] Matsumoto M, Takiguchi K, Tanaka M, et al. Fabrication of diffraction grating for X-ray Talbot interferometer[J]. Microsystem Technologies, 2007, 13(5): 543-546.

    [19] [19] Rutishauser S, Bednarzik M, Zanette I, et al. Fabrication of two dimensional hard X-ray diffraction gratings[J]. Microelectronic Engineering, 2013, 101: 12-16.

    [20] [20] Lei Y, Du Y, Li J, et al. Application of Bi absorption gratings in grating-based X-ray phase contrast imaging[J]. Applied Physics Express, 2013, 6(11): 117301.

    [21] [21] Lei Y, Du Y, Li J, et al. Fabrication of X-ray absorption gratings via micro-casting for grating-based phase contrast imaging[J]. Journal of Micromechanics and Microengineering, 2014, 24(1): 015007.

    [22] [22] Revol V, Kottler C, Kaufmann R, et al. Noise analysis of grating-based X-ray differential phase contrast imaging[J]. Review of Scientific Instruments, 2010, 81(7): 073709.

    [23] [23] Modregger P, Pinzer B R, Thüring T , et al. Sensitivity of X-ray grating interferometry[J]. Optics Express, 2011, 19(19): 18324-18338.

    [24] [24] Huang Jianheng, Du Yang, Lei Yaohu, et al. Noise analysis of hard X-ray differential phase contrast imaging[J]. Acta Physica Sinica, 2014, 63(16): 168702.

    [25] [25] Boone J M, Seibert J A. An accurate method for computer-generating tungsten anode X-ray spectra from 30 to 140 kV[J]. Medical Physics, 1997, 24(11): 1661-1670.

    CLP Journals

    [1] LI Ji, HUANG Jian-heng, LEI Yao-hu, LIU Xin, ZHAO Zhi-gang. Experimental Study of X-ray Phase Contrast Imaging Based on Cascaded Grating[J]. Acta Photonica Sinica, 2019, 48(1): 111003

    Tools

    Get Citation

    Copy Citation Text

    Huang Jianheng, Lei Yaohu, Du Yang, Liu Xin, Guo Jinchuan, Li Ji, Guo Baoping. Quantitative Calculation of Fringe Visibility in Bismuth Grating-Based X-Ray Phase-Contrast Imaging[J]. Acta Optica Sinica, 2017, 37(4): 434001

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: X-Ray Optics

    Received: Oct. 11, 2016

    Accepted: --

    Published Online: Apr. 10, 2017

    The Author Email: Jianheng Huang (xianhuangjianheng@163.com)

    DOI:10.3788/aos201737.0434001

    Topics