Modeling of N and P-Type of Coaxial Ge Detectors Using MCNPX and the Effect of Dead Layer Variation on Its Response Function

被引:1
作者
El-Tayebany, R. A. [1 ]
Ali, Mohamed [1 ]
Mohmed, Nawal [1 ]
Mohamed, R. S. [1 ]
机构
[1] Egyptian Atom Energy Author, Nucl & Radiol Safety Res Ctr, Cairo 13759, Egypt
来源
JOURNAL OF NUCLEAR ENGINEERING AND RADIATION SCIENCE | 2024年 / 10卷 / 04期
关键词
dead layer; MCNPX; coaxial Ge; n-type; p-type; Gamma-ray; PEAK EFFICIENCY; ENERGY-RANGE; HPGE; THICKNESS; CALIBRATION; SIMULATION; INCREASE;
D O I
10.1115/1.4065395
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
This study assessed the response function of a p-type and n-type coaxial high-purity germanium (HPGe) detector via Monte Carlo N-Particle eXtended (MCNPX). MCNPX was employed to model the Coaxial Ge detectors, and for a precise simulation, the dimensions of the dead layer of germanium crystals were added. The dead layer was separated into front and lateral surfaces, and the thickness of each dead layer was modeled. In this work, the simulated detectors have been performed at different energy lines using a radioactive source Eu-152 to study the response function of each with dead layer variations for the front dead layer and study the range of relative deviation of the Monte Carlo simulation outputs from the manufactured declared data. The results proved that the n-type coaxial HPGe detector is more sensitive to the dead layer change than the p-type with a thick change of 0.01 mm. This research has significant effects on the efficiencies of the radiation detection systems in the energy range similar to (120-1410) keV.
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页数:5
相关论文
共 29 条
[1]   Peak efficiency calibration for attenuation corrected cylindrical sources in gamma ray spectrometry by the use of a point source [J].
Aguiar, Julio C. ;
Galiano, Eduardo ;
Fernandez, Jorge .
APPLIED RADIATION AND ISOTOPES, 2006, 64 (12) :1643-1647
[2]  
Aguiar-Amado Peki P., 2021, NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, V990, DOI [10.1016/j.nima.2020, DOI 10.1016/J.NIMA.2020]
[3]   Determination of dead-layer variation in HPGe detectors [J].
Andreotti, E. ;
Hult, M. ;
Marissens, G. ;
Lutter, G. ;
Garfagnini, A. ;
Hemmer, S. ;
von Sturm, K. .
APPLIED RADIATION AND ISOTOPES, 2014, 87 :331-335
[4]   Investigation of shape effects and dead layer thicknesses of a coaxial HPGe crystal on detector efficiency by using PHITS Monte Carlo simulation [J].
Bolukdemir, M. H. ;
Uyar, E. ;
Aksoy, G. ;
Unlu, H. ;
Dikmen, H. ;
Ozgur, M. .
RADIATION PHYSICS AND CHEMISTRY, 2021, 189
[5]   A detailed investigation of HPGe detector response for improved Monte Carlo efficiency calculations [J].
Boson, Jonas ;
Agren, Goeran ;
Johansson, Lennart .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2008, 587 (2-3) :304-314
[6]  
Byun Soo Hyun, 2018, Radioisotopes and Radiation Methodology
[7]   Monte Carlo analysis of the influence of germanium dead layer thickness on the HPGe gamma detector experimental efficiency measured by use of extended sources [J].
Chham, E. ;
Pinero Garcia, F. ;
El Bardouni, T. ;
Angeles Ferro-Garcia, M. ;
Azahra, M. ;
Benaalilou, K. ;
Krikiz, M. ;
Elyaakoubi, H. ;
El Bakkali, J. ;
Kaddour, M. .
APPLIED RADIATION AND ISOTOPES, 2015, 95 :30-35
[8]   SMALL AREA HIGH-PURITY GERMANIUM DETECTORS FOR USE IN THE ENERGY-RANGE 100EV TO 100KEV [J].
COX, CE ;
LOWE, BG ;
SAREEN, RA .
IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 1988, 35 (01) :28-32
[9]   Experimental and MC determination of HPGe detector efficiency in the 40-2754 keV energy range for measuring point source geometry with the source-to-detector distance of 25 cm [J].
Dryak, Pavel ;
Kovar, Petr .
APPLIED RADIATION AND ISOTOPES, 2006, 64 (10-11) :1346-1349
[10]  
Georgali E., 2020, HNPS Adv. Nucl. Phys., V27, P152