Large area X-ray detectors for cargo radiography

被引:2
|
作者
Bueno, C. [1 ]
Albagli, D. [1 ]
Bendahan, J. [2 ]
Castleberry, D. [1 ]
Gordon, T. [1 ]
Hopkins, F. [1 ]
Ross, W. [1 ]
机构
[1] GE Global Res, One Res Circle, Niskayuna, NY 12309 USA
[2] GE Homeland Protect, Newark, CA 94560 USA
关键词
metal radiators; high-energy flat panel detectors; amorphous silicon diodes; Gd2O2S : Tb;
D O I
10.1117/12.736076
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Large area x-ray detectors based on phosphors coupled to flat panel amorphous silicon diode technology offer significant advances for cargo radiologic imaging. Flat panel area detectors provide large object coverage offering high throughput inspections to meet the high flow rate of container commerce. These detectors provide excellent spatial resolution when needed, and enhanced SNR through low noise electronics. If the resolution is reduced through pixel binning, further advances in SNR are achievable. Extended exposure imaging and frame averaging enables improved x-ray penetration of ultra-thick objects, or "select-your-own" contrast sensitivity at a rate many times faster than LDAs. The areal coverage of flat panel technology provides inherent volumetric imaging with the appropriate scanning methods. Flat panel area detectors have flexible designs in terms of electronic control, scintillator selection, pixel pitch, and frame rates. Their cost is becoming more competitive as production ramps up for the healthcare, nondestructive testing (NDT), and homeland protection industries. Typically used medical and industrial polycrystalline phosphor materials such as Gd2O2S:Tb (GOS) can be applied to megavolt applications if the phosphor layer is sufficiently thick to enhance x-ray absorption, and if a metal radiator is used to augment the quantum detection efficiency and reduce x-ray scatter. Phosphor layers ranging from 0.2-mm to 1-mm can be "sandwiched" between amorphous silicon flat panel diode arrays and metal radiators. Metal plates consisting of W, Pb or Cu, with thicknesses ranging from 0.25-mm to well over 1-min can be used by covering the entire area of the phosphor plate. In some combinations of high density metal and phosphor layers, the metal plate provides an intensification of 25% in signal due to electron emission from the plate and subsequent excitation within the phosphor material. This further improves the SNR of the system.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] Geometry and resolution of area detectors for X-ray powder diffraction
    He, Bob B.
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2008, 64 : C197 - C197
  • [42] XEUS - the X-ray mirrors and X-ray detectors
    Willingale, R
    X-RAY ASTRONOMY 2000, 2001, 234 : 589 - 596
  • [43] X-RAY RADIOGRAPHY OF COAL
    VINOPAL, R
    JOURNAL OF SEDIMENTARY PETROLOGY, 1979, 49 (02): : 483 - 486
  • [44] Fabrication of Large Area X-ray Diffraction Grating for X-ray Phase Imaging
    Noda, Daiji
    Tokuoka, Atsushi
    Katori, Megumi
    Minamiyama, Yasuto
    Yamashita, Kenji
    Nishida, Satoshi
    Hattori, Tadashi
    INTERNATIONAL WORKSHOP ON X-RAY AND NEUTRON PHASE IMAGING WITH GRATINGS, 2012, 1466 : 51 - 56
  • [45] Multi-energy X-ray detectors to improve air-cargo security
    Paulus, Caroline
    Moulin, Vincent
    Perion, Didier
    Radisson, Patrick
    Verger, Loick
    ANOMALY DETECTION AND IMAGING WITH X-RAYS (ADIX) II, 2017, 10187
  • [46] LARGE-AREA MULTI-CRYSTAL NAI(TI) DETECTORS FOR X-RAY AND GAMMA-RAY ASTRONOMY
    FISHMAN, GJ
    AUSTIN, RW
    NUCLEAR INSTRUMENTS & METHODS, 1977, 140 (01): : 193 - 196
  • [47] Large-Area Microcalorimeter Detectors for Ultra-High-Resolution X-Ray and Gamma-Ray Spectroscopy
    Bacrania, M. K.
    Hoover, A. S.
    Karpius, P. J.
    Rabin, M. W.
    Rudy, C. R.
    Vo, D. T.
    Beall, J. A.
    Bennett, D. A.
    Doriese, W. B.
    Hilton, G. C.
    Horansky, R. D.
    Irwin, K. D.
    Jethava, N.
    Sassi, E.
    Ullom, J. N.
    Vale, L. R.
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2009, 56 (04) : 2299 - 2302
  • [48] Digital chest radiography with a large-area flat-panel silicon X-ray detector: clinical comparison with conventional radiography
    Svenja P. Hennigs
    Marietta Garmer
    Horst J. Jaeger
    Reinhard Classen
    Andreas Jacobs
    Hans M. Gissler
    Andreas Christmann
    Klaus Mathias
    European Radiology, 2001, 11 : 1688 - 1696
  • [49] Large-area Si(Li) Detectors for X-ray Spectrometry and Particle Tracking for the GAPS Experiment
    Rogers, Field
    Xiao, Mengjiao
    Perez, Kerstin
    Boggs, Steven
    Erjavec, Tyler
    Fabris, Lorenzo
    Fuke, Hideyuki
    Hailey, Charles J.
    Kozai, Masayoshi
    Lowell, Alex
    Madden, Norman
    Manghisoni, Massimo
    McBride, Steve
    Re, Valerio
    Riceputi, Elisa
    Saffold, Nathan
    Shimizu, Yuki
    Zampa, Gianluigi
    2019 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE (NSS/MIC), 2019,
  • [50] Results on a prototype of a large-area X-ray imaging device using CMOS hybrid detectors
    Chaput, J
    Caria, M
    Laverroux, F
    Surre, B
    Maublant, J
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2005, 555 (1-2): : 236 - 242