Quantitative x-ray dark-field computed tomography

被引:204
作者
Bech, M. [1 ]
Bunk, O. [2 ]
Donath, T. [2 ]
Feidenhans'l, R. [3 ]
David, C. [2 ]
Pfeiffer, F. [1 ]
机构
[1] Tech Univ Munich, Dept Phys, D-85748 Garching, Germany
[2] Paul Scherrer Inst, CH-5232 Villigen, Switzerland
[3] Univ Copenhagen, Niels Bohr Inst, DK-2100 Copenhagen, Denmark
基金
欧洲研究理事会;
关键词
MULTIPLE-IMAGE RADIOGRAPHY; PHASE-CONTRAST TOMOGRAPHY; SYNCHROTRON-RADIATION; GRATING INTERFEROMETER;
D O I
10.1088/0031-9155/55/18/017
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
The basic principles of x-ray image formation in radiology have remained essentially unchanged since Rontgen first discovered x-rays over a hundred years ago. The conventional approach relies on x-ray attenuation as the sole source of contrast and draws exclusively on ray or geometrical optics to describe and interpret image formation. Phase-contrast or coherent scatter imaging techniques, which can be understood using wave optics rather than ray optics, offer ways to augment or complement the conventional approach by incorporating the wave-optical interaction of x-rays with the specimen. With a recently developed approach based on x-ray optical gratings, advanced phase-contrast and dark-field scatter imaging modalities are now in reach for routine medical imaging and non-destructive testing applications. To quantitatively assess the new potential of particularly the grating-based dark-field imaging modality, we here introduce a mathematical formalism together with a material-dependent parameter, the so-called linear diffusion coefficient and show that this description can yield quantitative dark-field computed tomography (QDFCT) images of experimental test phantoms.
引用
收藏
页码:5529 / 5539
页数:11
相关论文
共 35 条
[1]
Clinical step onward with X-ray dark-field imaging and perspective view of medical applications of synchrotron radiation in Japan [J].
Ando, M ;
Hashimoto, E ;
Hashizume, H ;
Hyodo, K ;
Inoue, H ;
Kunisada, T ;
Maksimenko, A ;
Mori, K ;
Rubenstein, E ;
Roberson, J ;
Shimao, D ;
Sugiyama, H ;
Takeda, K ;
Toyofuku, F ;
Ueno, E ;
Umetani, K ;
Wada, H ;
Pattanasiriwisawa, W .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2005, 548 (1-2) :1-16
[2]
X-ray imaging with the PILATUS 100k detector [J].
Bech, M. ;
Bunk, O. ;
David, C. ;
Kraft, P. ;
Broennimann, C. ;
Eikenberry, E. F. ;
Pfeiffer, F. .
APPLIED RADIATION AND ISOTOPES, 2008, 66 (04) :474-478
[3]
Advanced contrast modalities for X-ray radiology: Phase-contrast and dark-field imaging using a grating interferometer [J].
Bech, Martin ;
Jensen, Torben H. ;
Bunk, Oliver ;
Donath, Tilman ;
David, Christian ;
Weitkamp, Timm ;
Le Duc, Geraldine ;
Bravin, Alberto ;
Cloetens, Peter ;
Pfeiffer, Franz .
ZEITSCHRIFT FUR MEDIZINISCHE PHYSIK, 2010, 20 (01) :7-16
[4]
Hard X-ray phase-contrast imaging with the Compact Light Source based on inverse Compton X-rays [J].
Bech, Martin ;
Bunk, Oliver ;
David, Christian ;
Ruth, Ronald ;
Rifkin, Jeff ;
Loewen, Rod ;
Feidenhans'l, Robert ;
Pfeiffer, Franz .
JOURNAL OF SYNCHROTRON RADIATION, 2009, 16 :43-47
[5]
Soft-tissue phase-contrast tomography with an x-ray tube source [J].
Bech, Martin ;
Jensen, Torben H. ;
Feidenhans'l, Robert ;
Bunk, Oliver ;
David, Christian ;
Pfeiffer, Franz .
PHYSICS IN MEDICINE AND BIOLOGY, 2009, 54 (09) :2747-2753
[6]
X-ray microtomography (mu CT) using phase contrast for the investigation of organic matter [J].
Beckmann, F ;
Bonse, U ;
Busch, F ;
Gunnewig, O .
JOURNAL OF COMPUTER ASSISTED TOMOGRAPHY, 1997, 21 (04) :539-553
[7]
AN X-RAY INTERFEROMETER [J].
BONSE, U ;
HART, M .
APPLIED PHYSICS LETTERS, 1965, 6 (08) :155-&
[8]
Branco Tristao, 2003, Boletin de la SEA, V33, P278
[9]
Diffraction enhanced x-ray imaging [J].
Chapman, D ;
Thomlinson, W ;
Johnston, RE ;
Washburn, D ;
Pisano, E ;
Gmur, N ;
Zhong, Z ;
Menk, R ;
Arfelli, F ;
Sayers, D .
PHYSICS IN MEDICINE AND BIOLOGY, 1997, 42 (11) :2015-2025
[10]
Clauser J. F, 1998, United States patent, Patent No. [US 5,812,629, 5812629]