Literature DB >> 12953903

Monte Carlo simulation of the energy loss of low-energy electrons in liquid water.

D Emfietzoglou1, K Karava, G Papamichael, M Moscovitch.   

Abstract

A Monte Carlo code that performs detailed (i.e. event-by-event) simulation of the transport and energy loss of low-energy electrons (approximately 50-10 000 eV) in water in the liquid phase is presented. The inelastic model for energy loss is based on a semi-empirical dielectric-response function for the valence-shells of the liquid whereas an exchange corrected semi-classical formula was used for K-shell ionization. Following a methodology widely used for the vapour phase, we succeeded in parametrizing the dielectric cross-sections of the liquid in accordance with the Bethe asymptote, thus providing a unified approach for both phases of water and greatly facilitating the computations. Born-corrections at lower energies have been implemented in terms of a second-order perturbation term with a simple Coulomb-field correction and the use of a Mott-type exchange modification. Angular deflections were determined by empirical schemes established from vapour data. Electron tracks generated by the code were used to calculate energy- and interaction-point-kernel distributions at low electron energies in liquid water. The effect of various model assumptions (e.g., dispersion, Born-corrections, phase) on both the single-collision and slowing-down distributions is examined.

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Year:  2003        PMID: 12953903     DOI: 10.1088/0031-9155/48/15/308

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  10 in total

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2.  Calculation on spectrum of direct DNA damage induced by low-energy electrons including dissociative electron attachment.

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3.  Monte Carlo calculations of energy deposition distributions of electrons below 20 keV in protein.

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4.  Real-space analysis of radiation-induced specific changes with independent component analysis.

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5.  Inelastic scattering of electrons in water from first principles: cross sections and inelastic mean free path for use in Monte Carlo track-structure simulations of biological damage.

Authors:  Natalia E Koval; Peter Koval; Fabiana Da Pieve; Jorge Kohanoff; Emilio Artacho; Dimitris Emfietzoglou
Journal:  R Soc Open Sci       Date:  2022-05-18       Impact factor: 3.653

6.  Future directions on low-energy radiation dosimetry.

Authors:  G Massillon-Jl
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Review 7.  Ionizing Radiation and Complex DNA Damage: From Prediction to Detection Challenges and Biological Significance.

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Review 8.  Review of the Geant4-DNA Simulation Toolkit for Radiobiological Applications at the Cellular and DNA Level.

Authors:  Ioanna Kyriakou; Dousatsu Sakata; Hoang Ngoc Tran; Yann Perrot; Wook-Geun Shin; Nathanael Lampe; Sara Zein; Marie Claude Bordage; Susanna Guatelli; Carmen Villagrasa; Dimitris Emfietzoglou; Sébastien Incerti
Journal:  Cancers (Basel)       Date:  2021-12-22       Impact factor: 6.639

9.  Development and validation of proton track-structure model applicable to arbitrary materials.

Authors:  Tatsuhiko Ogawa; Yuho Hirata; Yusuke Matsuya; Takeshi Kai
Journal:  Sci Rep       Date:  2021-12-21       Impact factor: 4.379

10.  Electron Inelastic Mean Free Paths for LiF, CaF2, Al2O3, and Liquid Water from 433 keV down to the Energy Gap.

Authors:  Miguel Angel Flores-Mancera; John S Villarrubia; Guerda Massillon-Jl
Journal:  ACS Omega       Date:  2020-02-17
  10 in total

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