Monte Carlo simulation of water radiolysis for low-energy charged particles

被引:100
|
作者
Uehara, S
Nikjoo, H
机构
[1] Kyushu Univ, Sch Hlth Sci, Fukuoka 8128582, Japan
[2] NASA, Johnson Space Ctr, Ctr Adv Space Studies, USRA, Houston, TX 77058 USA
关键词
D O I
10.1269/jrr.47.69
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The paper describes the development of chemical modules simulating the prechemical and chemical stages of charged particle tracks in pure liquid water. These calculations are based on our physical track structure codes for electrons and ions (KURBUC, LEPHIST and LEAHIST) which provide the initial spatial distribution of H2O+, H2O* and subexcitation electrons at similar to 10(-15) s. We considered 11 species and 26 chemical reactions. A step-by-step Monte Carlo approach was adopted for the chemical stage between 10(-12) s and 10(-6) s. The chemistry codes enabled to simulate the non-homogeneous chemistry that pertains to electron, proton and alpha-particle tracks of various linear energy transfers (LET). Time-dependent yields of chemical species produced by electrons and ions of different energies were calculated. The calculated primary yields (G values at 10(-6) s) of 2.80 for OH and 2.59 for e(aq)(-) for 1 MeV electrons are in good agreement with the published values. The calculated G values at 10-6 s for a wide range LETS from of 0.2 to 235 keV mu m(-1) were obtained. The calculations show the LET dependence for OH and H2O2. The electron penetration ranges were calculated in order to discuss the role of low energy electrons.
引用
收藏
页码:69 / 81
页数:13
相关论文
共 50 条
  • [31] ENTRY OF LOW-ENERGY CHARGED-PARTICLES INTO MAGNETOSPHERE
    PFITZER, KA
    OLSON, WP
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1973, 54 (04): : 432 - &
  • [32] Accelerated Monte Carlo simulation on the chemical stage in water radiolysis using GPU
    Tian, Zhen
    Jiang, Steve B.
    Jia, Xun
    PHYSICS IN MEDICINE AND BIOLOGY, 2017, 62 (08): : 3081 - 3096
  • [33] A CALCULATION METHOD ON LOW-ENERGY ELECTRON-SCATTERING IN SOLIDS BY MONTE-CARLO SIMULATION
    HE, YC
    CHEN, JG
    HU, M
    WANG, XL
    KEXUE TONGBAO, 1988, 33 (20): : 1747 - 1748
  • [34] COMPARISON OF VARIOUS MONTE CARLO SCHEMES FOR SIMULATION OF LOW-ENERGY ELECTRON TRANSPORT IN MATTER.
    Akkerman, A.F.
    Gibrekhterman, A.L.
    1600, (B6):
  • [35] Formation of ion clusters by low-energy electrons in nanometric targets: Experiment and Monte Carlo simulation
    Bantsar, A.
    Grosswendt, B.
    Pszona, S.
    RADIATION PROTECTION DOSIMETRY, 2006, 122 (1-4) : 82 - 85
  • [36] Attractive interactions in dispersions of identical charged colloidal particles: a Monte Carlo simulation
    Feng, J
    Ruckenstein, E
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2004, 272 (02) : 430 - 437
  • [37] Low-energy electron scattering in solids a Monte Carlo approach
    Fitting, HJ
    Kuhr, JC
    ADVANCED MONTE CARLO FOR RADIATION PHYSICS, PARTICLE TRANSPORT SIMULATION AND APPLICATIONS, 2001, : 39 - 42
  • [38] A Monte Carlo method for coagulation of charged particles
    Wei, Jianming
    JOURNAL OF AEROSOL SCIENCE, 2013, 65 : 21 - 25
  • [39] Auxiliary field Monte Carlo for charged particles
    Maggs, AC
    JOURNAL OF CHEMICAL PHYSICS, 2004, 120 (07): : 3108 - 3118
  • [40] Monte Carlo simulation for low energy electron transport
    Dubus, A
    PROCEEDINGS OF THE WORKSHOP "MONTE CARLO METHODS AND MODELS FOR APPLICATIONS IN ENERGY AND TECHNOLOGY", 1999, 6266 : 311 - +