Digital radiology using active matrix readout of amorphous selenium: Construction and evaluation of a prototype real-time detector

被引:109
作者
Zhao, W
Blevis, I
Germann, S
Rowlands, JA
Waechter, D
Huang, ZS
机构
[1] Univ Toronto, Sunnybrook Hlth Sci Ctr, Dept Med Biophys, Toronto, ON M4N 3M5, Canada
[2] Litton Syst Canada Ltd, Etobicoke, ON M9W 5A7, Canada
关键词
amorphous selenium; flat-panel detector; real-time; x-ray imaging; active matrix; TFT array; DQE; MTF; NPS;
D O I
10.1118/1.598098
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
The goal of the present work is to develop a large area, flat-panel solid-state detector for both digital radiography and fluoroscopy. The proposed detector employs a photoconductive layer of amorphous selenium (a-Se) to convert x rays into charge. The charge image formed by the a-Se layer is electronically read out in situ using a two dimensional array of thin film transistors (TFTs), or active matrix. Since the active matrix readout is capable of producing x-ray images in real-time, it can potentially be applied in both radiography and fluoroscopy. In this paper, the imaging performance of this concept is investigated using a prototype x-ray imaging detector. The designs for the active matrix, the peripheral electronic circuits, and the image acquisition system are described. Measurements of x-ray imaging properties of the prototype detector, i.e., x-ray sensitivity, presampling modulation transfer function (MTF), and noise power spectrum (NPS), were performed, and from which the spatial frequency dependent detective quantum efficiency (DQE) of the prototype was derived. The experimental results are in agreement with the results of our theoretical analysis. The factors affecting the imaging performance and methods of improvement in the future are discussed. (C) 1997 American Association of Physicists in Medicine.
引用
收藏
页码:1834 / 1843
页数:10
相关论文
共 23 条
[1]   DEMONSTRATION OF MEGAVOLTAGE AND DIAGNOSTIC-X-RAY IMAGING WITH HYDROGENATED AMORPHOUS-SILICON ARRAYS [J].
ANTONUK, LE ;
BOUDRY, J ;
HUANG, WD ;
MCSHAN, DL ;
MORTON, EJ ;
YORKSTON, J ;
LONGO, MJ ;
STREET, RA .
MEDICAL PHYSICS, 1992, 19 (06) :1455-1466
[2]  
BIRCH R, 1979, CATALOGUE SPECTRAL D
[3]  
BRACEWELL RN, 1986, FOURIER TRANSFORM IT, pCH6
[4]   Amorphous silicon x-ray image sensor [J].
Chabbal, J ;
Chaussat, C ;
Ducourant, T ;
Fritsch, L ;
Michailos, J ;
Spinnler, V ;
Vieux, G ;
Arques, M ;
Hahm, G ;
Hoheisel, M ;
Horbaschek, H ;
Schulz, R ;
Spahn, M .
PHYSICS OF MEDICAL IMAGING: MEDICAL IMAGING 1996, 1996, 2708 :499-510
[5]  
DAINTY JC, 1974, IMAGE SCI, pCH6
[6]   EFFECTS OF UNDERSAMPLING ON THE PROPER INTERPRETATION OF MODULATION TRANSFER-FUNCTION, NOISE POWER SPECTRA, AND NOISE EQUIVALENT QUANTA OF DIGITAL IMAGING-SYSTEMS [J].
DOBBINS, JT .
MEDICAL PHYSICS, 1995, 22 (02) :171-181
[7]   THIN-FILM CADMIUM SELENIDE TECHNOLOGY IN LARGE AREA ACTIVE MATRIX HIGH-RESOLUTION DISPLAYS [J].
FARRELL, J ;
WESTCOTT, M ;
VANCALSTER, A ;
DEBAETS, J ;
DERYCKE, I ;
CAPON, J ;
DESMET, H ;
DOUTRELOIGNE, J ;
VANFLETEREN, J .
MICROELECTRONIC ENGINEERING, 1992, 19 (1-4) :187-190
[8]   INVESTIGATION OF BASIC IMAGING PROPERTIES IN DIGITAL RADIOGRAPHY .2. NOISE WIENER SPECTRUM [J].
GIGER, ML ;
DOI, K ;
METZ, CE .
MEDICAL PHYSICS, 1984, 11 (06) :797-805
[9]   High-resolution amorphous silicon image sensor [J].
Graeve, T ;
Li, YM ;
Fabans, A ;
Huang, WG .
PHYSICS OF MEDICAL IMAGING: MEDICAL IMAGING 1996, 1996, 2708 :494-498
[10]  
JUDY P F, 1976, Medical Physics (Woodbury), V3, P233, DOI 10.1118/1.594283