Self-aligned multi-layer X-ray absorption grating using large-area fabrication methods for X-ray phase-contrast imaging

被引:0
|
作者
Abdollah Pil-Ali
Sahar Adnani
Karim S. Karim
机构
[1] University of Waterloo,Department of Electrical and Computer Engineering
[2] University of Waterloo,Centre for Bioengineering and Biotechnology
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
X-ray phase-contrast (XPCi) imaging methods are an emerging medical imaging approach that provide significantly better soft tissue contrast and could function as a viable extension to conventional X-ray, CT, and even some MRI. Absorption gratings play a central role in grating-based XPCi systems, especially because they enable the acquisition of three images in a single exposure: transmission, refraction, and dark-field. An impediment to commercial development and adoption of XPCi imaging systems is the lack of large area, high aspect ratio absorption gratings. Grating technology development, primarily due to technological limitations, has lagged system development and today prevents the scaling up of XPCi system into a footprint and price point acceptable to the medical market. In this work, we report on a self-aligned multi-layer grating fabrication process that can enable large-area X-ray absorption gratings with micron-scale feature sizes. We leverage large-area fabrication techniques commonly employed by the thin-film transistor (TFT) display industry. Conventional ITO-on-glass substrates are used with a patterned film of Cr/Au/Cr that serves as a self-aligned lithography mask for backside exposure. Commonly available SU-8 photoresist is patterned using the backside exposure mask followed by an electroplating step to fill the gaps in the SU-8 with X-ray attenuating material. Consequently, the electroplated patterned material acts as a self-aligned photomask for subsequent SU-8 layer patterning and so forth. The repeatability of the reported process makes it suitable for achieving higher aspect ratio structures and is advantageous over previously reported X-ray LIGA approaches. A prototype three-layer grating, with a thickness of around 40μm\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$40\,\upmu \text{m}$$\end{document}, having a visibility of 0.28 at 60kVp\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$60\,\text{kV}_p$$\end{document} with a 70mm×70mm\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$70\,\text{mm}\times 70\,\text{mm}$$\end{document} active area was fabricated on a 4-inch glass substrate and demonstrated by modifying a commercially available 3D propagation-based XPCi Microscope. The scalable and cost-effective approach to build larger area X-ray gratings reported in this work can help expedite the commercial development and adoption of previously reported Talbot-Lau, speckle-tracking, as well as coded-aperture XPCi systems for large-area clinical and industrial applications.
引用
收藏
相关论文
共 50 条
  • [21] Hard X-ray phase-contrast imaging
    Gao, DC
    Pogany, A
    Stevenson, AW
    Gureyev, T
    Wilkins, SW
    Mai, ZH
    ACTA PHYSICA SINICA, 2000, 49 (12) : 2357 - 2368
  • [22] Optimal contrast for X-ray phase-contrast imaging
    College of Medical Instrument, University of Shanghai Science and Technology, Shanghai 200093, China
    不详
    Guangzi Xuebao, 2008, 6 (1217-1220):
  • [23] Differential X-ray phase-contrast imaging with a grating interferometer using a laboratory X-ray micro-focus tube
    Kwon-Ha Yoon
    Jong Hyun Ryu
    Chang Won Jung
    Cheol Woo Ryu
    Young Jo Kim
    Young Man Kwon
    Miran Park
    Seungryong Cho
    Kwon Su Chon
    Journal of the Korean Physical Society, 2014, 65 : 2111 - 2116
  • [24] Differential X-ray phase-contrast imaging with a grating interferometer using a laboratory X-ray micro-focus tube
    Yoon, Kwon-Ha
    Ryu, Jong Hyun
    Jung, Chang Won
    Ryu, Cheol Woo
    Kim, Young Jo
    Kwon, Young Man
    Park, Miran
    Cho, Seungryong
    Chon, Kwon Su
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2014, 65 (12) : 2111 - 2116
  • [25] On analyzing of the contrast for X-ray phase-contrast imaging
    Liu, S.
    Zhang, X. L.
    Huang, Y.
    2007 IEEE/ICME INTERNATIONAL CONFERENCE ON COMPLEX MEDICAL ENGINEERING, VOLS 1-4, 2007, : 1168 - 1171
  • [26] X-ray phase-contrast imaging: Phase reconstructions
    Wu, Xizeng
    Liu, Hong
    2005 27TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-7, 2005, : 1786 - 1789
  • [27] X-ray dark-field and phase-contrast imaging using a grating interferometer
    Pfeiffer, F.
    Bech, M.
    Bunk, O.
    Donath, T.
    Henrich, B.
    Kraft, P.
    David, C.
    JOURNAL OF APPLIED PHYSICS, 2009, 105 (10)
  • [28] X-ray dark-field and phase-contrast imaging using a grating interferometer
    Pfeiffer, F.
    Bech, M.
    Bunk, O.
    Donath, T.
    Henrich, B.
    Kraft, P.
    David, C.
    Journal of Applied Physics, 2009, 105 (10):
  • [29] X-ray imaging of various biological samples using a phase-contrast hard X-ray microscope
    Kim, Guk Bae
    Yoon, Yae Jin
    Shin, Tae Joo
    Youn, Hwa Shik
    Gho, Yong Song
    Lee, Sang Joon
    MICROSCOPY RESEARCH AND TECHNIQUE, 2008, 71 (09) : 639 - 643
  • [30] Phase-contrast tomographic imaging using an X-ray interferometer
    Momose, A
    Takeda, T
    Itai, Y
    Yoneyama, A
    Hirano, K
    JOURNAL OF SYNCHROTRON RADIATION, 1998, 5 : 309 - 314