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Cited 8 time in webofscience Cited 12 time in scopus
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Validation of Cross Sections for Monte Carlo Simulation of the Photoelectric Effectopen access

Authors
Han, Min CheolKim, Han SungPia, Maria GraziaBasaglia, TullioBatic, MatejHoff, GabrielaKim, Chan HyeongSaracco, Paolo
Issue Date
Apr-2016
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Geant4; Monte Carlo; simulation; x-rays
Citation
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, v.63, no.2, pp.1117 - 1146
Indexed
SCIE
SCOPUS
Journal Title
IEEE TRANSACTIONS ON NUCLEAR SCIENCE
Volume
63
Number
2
Start Page
1117
End Page
1146
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/3238
DOI
10.1109/TNS.2016.2521876
ISSN
0018-9499
Abstract
Several total and partial photoionization cross section calculations, based on both theoretical and empirical approaches, are quantitatively evaluated with statistical analyses using a large collection of experimental data retrieved from the literature to identify the state of the art for modeling the photoelectric effect in Monte Carlo particle transport. Some of the examined cross section models are available in general purpose Monte Carlo systems, while others have been implemented and subjected to validation tests for the first time to estimate whether they could improve the accuracy of particle transport codes. The validation process identifies Scofield's 1973 non-relativistic calculations, tabulated in the Evaluated Photon Data Library (EPDL), as the one best reproducing experimental measurements of total cross sections. Specialized total cross section models, some of which derive from more recent calculations, do not provide significant improvements. Scofield's non-relativistic calculations are not surpassed regarding the compatibility with experiment of K and L shell photoionization cross sections either, although in a few test cases Ebel's parameterization produces more accurate results close to absorption edges. Modifications to Biggs and Lighthill's parameterization implemented in Geant4 significantly reduce the accuracy of total cross sections at low energies with respect to its original formulation. The scarcity of suitable experimental data hinders a similar extensive analysis for the simulation of the photoelectron angular distribution, which is limited to a qualitative appraisal.
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