Internal elemental microanalysis combining x-ray fluorescence, Compton and transmission tomography

被引:124
作者
Golosio, B
Simionovici, A
Somogyi, A
Lemelle, L
Chukalina, M
Brunetti, A
机构
[1] European Synchrotron Radiat Facil, F-38043 Grenoble, France
[2] ENS Lyon, Lab Sci Terre, F-69007 Lyon, France
[3] Russian Acad Sci, Inst Microelect Technol, Chernogolovka 142432, Moscow District, Russia
[4] Univ Sassari, Ist Matemat & Fis, I-07100 Sassari, Italy
关键词
D O I
10.1063/1.1578176
中图分类号
O59 [应用物理学];
学科分类号
摘要
Conventional x-ray transmission tomography provides the spatial distribution of the absorption coefficient inside a sample. Other tomographic techniques, based on the detection of photons coming from fluorescent emission, Compton and Rayleigh scattering, are used for obtaining information on the internal elemental composition of the sample. However, the reconstruction problem for these techniques is generally much more difficult than that of transmission tomography, mainly due to self-absorption effects in the sample. In this article an approach to the reconstruction problem is presented, which integrates the information from the three types of signals. This method provides the quantitative spatial distribution of all elements that emit detectable fluorescent lines (Zgreater than or equal to15 in usual experimental conditions), even when the absorption effects are strong, and the spatial distribution of the global density of the lighter elements. The use of this technique is demonstrated on the reconstruction of a grain of the martian meteorite NWA817, mainly composed of low Z elements not measured in fluorescence and for which this method provides a unique insight. The measurement was done at the ID22 beamline of the European Synchrotron Radiation Facility. (C) 2003 American Institute of Physics.
引用
收藏
页码:145 / 156
页数:12
相关论文
共 33 条
[1]   SIMULTANEOUS ALGEBRAIC RECONSTRUCTION TECHNIQUE (SART) - A SUPERIOR IMPLEMENTATION OF THE ART ALGORITHM [J].
ANDERSEN, AH ;
KAK, AC .
ULTRASONIC IMAGING, 1984, 6 (01) :81-94
[2]  
[Anonymous], 1986, THESIS MIT
[3]   Synchrotron hard x-ray microprobe:: Fluorescence imaging of single cells [J].
Bohic, S ;
Simionovici, A ;
Snigirev, A ;
Ortega, R ;
Devès, G ;
Heymann, D ;
Schroer, CG .
APPLIED PHYSICS LETTERS, 2001, 78 (22) :3544-3546
[4]   Software for X-ray fluorescence and scattering tomographic reconstruction [J].
Brunetti, A ;
Golosio, B .
COMPUTER PHYSICS COMMUNICATIONS, 2001, 141 (03) :412-425
[5]  
CARLO FD, 2002, P SOC PHOTO-OPT INS, V4503, P1
[6]   A NEW TOMOGRAPHIC DEVICE BASED ON THE DETECTION OF FLUORESCENT X-RAYS [J].
CESAREO, R ;
MASCARENHAS, S .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1989, 277 (2-3) :669-672
[7]   Rayleigh to Compton ratio computed tomography using synchrotron radiation [J].
Duvauchelle, P ;
Peix, G ;
Babot, D .
NDT & E INTERNATIONAL, 2000, 33 (01) :23-31
[8]  
GOLOSIO B, 2002, IN PRESS J PHYS 4
[9]   RECONSTRUCTION STRATEGY SUITED TO X-RAY-DIFFRACTION TOMOGRAPHY [J].
GRANT, JA ;
MORGAN, MJ ;
DAVIS, JR ;
WELLS, P .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1995, 12 (02) :291-300
[10]   ANGLES BETWEEN NULL SPACES OF X-RAYS [J].
HAMAKER, C ;
SOLMON, DC .
JOURNAL OF MATHEMATICAL ANALYSIS AND APPLICATIONS, 1978, 62 (01) :1-23