Modelling the response function of energy dispersive X-ray spectrometers with silicon detectors

被引:109
|
作者
Scholze, F. [1 ]
Procop, M. [2 ]
机构
[1] Phys Tech Bundesanstalt, D-10587 Berlin, Germany
[2] Bundesanstalt Mat Forsch & Prufung, D-12200 Berlin, Germany
关键词
ELECTRON-HOLE PAIR; SI(LI) DETECTOR; RANGE; CALIBRATION; SPECTRA; PHOTOIONIZATION; TRANSMISSION; PARAMETERS; SCATTERING; EFFICIENCY;
D O I
10.1002/xrs.1165
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
A new, analytical description of the physical processes determining the spectral response of an energy dispersive X-ray spectrometer with a silicon detector (Si(Li) or silicon drift detector (SDD)) is presented. The model considers the detector statistical noise, the electronic noise, the incomplete charge collection (ICC) that gives rise to the peak tailing, the escape effect, the fluorescence of the front contact or the dead layer and hot photoelectrons that cause the shelf. Only five free parameters are necessary to model the response function: the electronic noise, three parameters describing the shape of the charge collection efficiency beneath the front contact and the thickness of the detector front layer. Once the five parameters are adjusted to have agreement between a measured and a calculated response function, the response function can be calculated for any other photon energy in the range from 0.1 keV to 30 keV. The algorithm is implemented in IDL and MATLAB and is available also as MATLAB stand-alone program. It enables the determination of the optimum parameter set by fitting a calculated response function to a measured one for monochromatic radiation. A (m,n)-type matrix can be calculated whereby m represents the number of channels for the response function and n the number of photon energies in the selected range. The matrix can be used to convolute a calculated spectrum for comparison with a measured one. The calculated response functions are in agreement with the pulse height distributions measured with monochromatic synchrotron radiation in the energy range from 0.1 keV to 10 keV for three spectrometers with detector crystals different in construction. It is shown that the improved description of the detector response enables the detection of minor components of characteristic lines in fluorescence spectra, which have been attributed earlier to the detector. Copyright (C) 2009 John Wiley & Sons, Ltd.
引用
收藏
页码:312 / 321
页数:10
相关论文
共 50 条
  • [21] Amorphous silicon X-ray detectors
    Hoheisel, M
    Arques, M
    Chabbal, J
    Chaussat, C
    Ducourant, T
    Hahm, G
    Horbaschek, H
    Schulz, R
    Spahn, M
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 1998, 227 : 1300 - 1305
  • [22] Silicon Absolute X-Ray Detectors
    Seely, John F.
    Korde, Raj
    Sprunck, Jacob
    Medjoubi, Kadda
    Hustache, Stephanie
    SRI 2009: THE 10TH INTERNATIONAL CONFERENCE ON SYNCHROTRON RADIATION INSTRUMENTATION, 2010, 1234 : 842 - +
  • [23] High resolution non dispersive x-ray spectroscopy with state of the art silicon detectors
    Struder, L
    Fiorini, C
    Gatti, E
    Hartmann, R
    Holl, P
    Krause, N
    Lechner, P
    Longoni, A
    Lutz, G
    Kemmer, J
    Meidinger, N
    Popp, M
    Soltau, H
    von Zanthier, C
    MIKROCHIMICA ACTA, 1998, : 11 - 19
  • [24] IDENTIFICATION OF SILICON IN LUNG BY ENERGY-DISPERSIVE X-RAY ANALYSIS
    SIEGESMUND, KA
    FUNAHASHI, A
    PINTAR, K
    AMERICAN REVIEW OF RESPIRATORY DISEASE, 1975, 111 (06): : 903 - 903
  • [25] VACUUM X-RAY SPECTROMETERS WITH POSITION-SENSITIVE DETECTORS
    DOLGIKH, VE
    CHERKASHENKO, VM
    KURMAEV, EZ
    GOGANOV, DA
    OVCHINNIKOV, EK
    YARMOSHENKO, YM
    TOPORKOVA, TP
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 1985, 28 (01) : 207 - 211
  • [26] Monolithic CMOS Detectors for use as X-ray Imaging Spectrometers
    Kenter, Almus
    Kraft, Ralph
    Gauron, Thomas
    HARD X-RAY, GAMMA-RAY, AND NEUTRON DETECTOR PHYSICS XX, 2018, 10762
  • [27] Development of Monolithic CMOS Detectors as x-ray Imaging Spectrometers
    Kenter, A. T.
    Kraft, R.
    Murray, S. S.
    HIGH ENERGY, OPTICAL, AND INFRARED DETECTORS FOR ASTRONOMY V, 2012, 8453
  • [28] MONTE-CARLO SIMULATION OF CONVENTIONAL AND SYNCHROTRON ENERGY-DISPERSIVE X-RAY SPECTROMETERS
    JANSSENS, K
    VINCZE, L
    VANESPEN, P
    ADAMS, F
    X-RAY SPECTROMETRY, 1993, 22 (04) : 234 - 243
  • [29] Calibration of an energy response model for spectroscopic x-ray detectors
    Dydula, Christopher
    Iniewski, Kris
    Tanguay, Jesse
    MEDICAL PHYSICS, 2021, 48 (08) : 4669 - 4669
  • [30] Energy dispersive X-ray diffraction
    Kaempfe, Bernd
    Luczak, Falk
    Michel, Bernd
    PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION, 2006, 22 (06) : 391 - 396