Phase-contrast radiography

被引:46
作者
Gao, DC [1 ]
Pogany, A [1 ]
Stevenson, AW [1 ]
Wilkins, SW [1 ]
机构
[1] CSIRO, Clayton, Vic 3168, Australia
关键词
radiography; comparative studies; phase contrast; technology;
D O I
10.1148/radiographics.18.5.9747618
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 [临床医学]; 100207 [影像医学与核医学]; 1009 [特种医学];
摘要
For the past 100 years, the paradigm for radiography has been premised on absorption as the sole means of contrast formation and on ray optics as the basis for image interpretation. A new conceptual approach to radiography has been developed that includes phase (ie, refractive) contrast and requires wave optics for proper treatment. This new approach greatly increases the amount of information that can be obtained with radiographic techniques and is particularly well suited to the imaging of soft tissue and of very small features in biologic samples. A key feature of the present technique of phase-contrast radiography is the use of a microfocus x-ray source about an order of magnitude (less than or equal to 20 mu m) smaller than that used in conventional radiography. Phase-contrast radiography offers a number of improvements over conventional radiography in a clinical setting, especially in soft-tissue imaging. These improvements include increased contrast resulting in improved visualization of anatomic detail, reduced absorbed dose to the patient, inherent image magnification and high spatial resolution, use of harder x rays, and relative ease of implementation. More technologically advanced detectors are currently being developed and commercialized, which will help fully realize the considerable potential of phase-contrast imaging.
引用
收藏
页码:1257 / 1267
页数:11
相关论文
共 20 条
[1]
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
[2]
X-ray computed microtomography (mu CT) using synchrotron radiation (SR) [J].
Bonse, U ;
Busch, F .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1996, 65 (1-2) :133-169
[3]
Phase objects in synchrotron radiation hard x-ray imaging [J].
Cloetens, P ;
Barrett, R ;
Baruchel, J ;
Guigay, JP ;
Schlenker, M .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1996, 29 (01) :133-146
[4]
PHASE-CONTRAST IMAGING OF WEAKLY ABSORBING MATERIALS USING HARD X-RAYS [J].
DAVIS, TJ ;
GAO, D ;
GUREYEV, TE ;
STEVENSON, AW ;
WILKINS, SW .
NATURE, 1995, 373 (6515) :595-598
[5]
DOUBLE CRYSTAL DIFFRACTOMETRY FOR THE CHARACTERIZATION OF TARGETS FOR LASER FUSION EXPERIMENTS [J].
FORSTER, E ;
GOETZ, K ;
ZAUMSEIL, P .
KRISTALL UND TECHNIK-CRYSTAL RESEARCH AND TECHNOLOGY, 1980, 15 (08) :937-945
[6]
A NEW MICROSCOPIC PRINCIPLE [J].
GABOR, D .
NATURE, 1948, 161 (4098) :777-778
[7]
X-RAY PHASE-CONTRAST IMAGING STUDY OF VOIDS AND FIBERS IN A POLYMER MATRIX [J].
GAO, D ;
DAVIS, TJ ;
WILKINS, SW .
AUSTRALIAN JOURNAL OF PHYSICS, 1995, 48 (01) :103-111
[8]
On X-ray phase retrieval from polychromatic images [J].
Gureyev, TE ;
Wilkins, SW .
OPTICS COMMUNICATIONS, 1998, 147 (4-6) :229-232
[9]
On x-ray phase imaging with a point source [J].
Gureyev, TE ;
Wilkins, SW .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1998, 15 (03) :579-585
[10]
Method of phase-dispersion introscopy [J].
Ingal V.N. ;
Belyaevskaya E.A. .
Technical Physics, 1997, 42 (1) :59-67