Full text
![]() |
PDF
- Requires a PDF viewer, such as GSview, Xpdf or Adobe Acrobat Reader
Download (2MB) |
Koval, Natalia E., Koval, Peter, Da Pieve, Fabiana, Kohanoff, Jorge ORCID: https://orcid.org/0000-0002-8237-7543, Artacho, Emilio and Emfietzoglou, Dimitris
(2022).
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.
"Royal Society Open Science", v. 9
(n. 5);
p. 212011.
https://doi.org/10.1098/rsos.212011.
Title: | 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 |
---|---|
Author/s: |
|
Item Type: | Article |
Título de Revista/Publicación: | Royal Society Open Science |
Date: | 18 May 2022 |
Volume: | 9 |
Subjects: | |
Freetext Keywords: | radiation damage, inelastic electron scattering, water, linear response, time-dependent density functional theory, track-structure simulations |
Faculty: | Instituto de Fusión Nuclear (UPM) |
Department: | Ingeniería Energética |
Creative Commons Licenses: | Recognition |
![]() |
PDF
- Requires a PDF viewer, such as GSview, Xpdf or Adobe Acrobat Reader
Download (2MB) |
Modelling the inelastic scattering of electrons in water is fundamental, given their crucial role in biological damage. In Monte Carlo track-structure (MC-TS) codes used to assess biological damage, the energy loss function (ELF), from which cross sections are extracted, is derived from different semi-empirical optical models. Only recently have first ab initio results for the ELF and cross sections in water become available. For benchmarking purpose, in this work, we present ab initio linear-response time-dependent density functional theory calculations of the ELF of liquid water. We calculated the inelastic scattering cross sections, inelastic mean free paths, and electronic stopping power and compared our results with recent calculations and experimental data showing a good agreement. In addition, we provide an in-depth analysis of the contributions of different molecular orbitals, species and orbital angular momenta to the total ELF. Moreover, we present single-differential cross sections computed for each molecular orbital channel, which should prove useful for MC-TS simulations.
Item ID: | 70642 |
---|---|
DC Identifier: | https://oa.upm.es/70642/ |
OAI Identifier: | oai:oa.upm.es:70642 |
DOI: | 10.1098/rsos.212011 |
Official URL: | https://royalsocietypublishing.org/doi/abs/10.1098... |
Deposited by: | Dr Jorge Kohanoff |
Deposited on: | 20 Jun 2022 11:54 |
Last Modified: | 20 Jun 2022 11:54 |