Please use this identifier to cite or link to this item: https://olympias.lib.uoi.gr/jspui/handle/123456789/19292
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dc.contributor.authorLiamsuwan, T.en
dc.contributor.authorUehara, S.en
dc.contributor.authorEmfietzoglou, D.en
dc.contributor.authorNikjoo, H.en
dc.date.accessioned2015-11-24T18:58:34Z-
dc.date.available2015-11-24T18:58:34Z-
dc.identifier.issn1362-3095-
dc.identifier.urihttps://olympias.lib.uoi.gr/jspui/handle/123456789/19292-
dc.rightsDefault Licence-
dc.subjectAlgorithmsen
dc.subjectBiophysicsen
dc.subjectComputer Simulationen
dc.subjectElectronsen
dc.subject*Models, Theoreticalen
dc.subject*Monte Carlo Methoden
dc.subject*Protonsen
dc.subjectRadiometryen
dc.subjectScattering, Radiationen
dc.subject*Wateren
dc.titlePhysical and biophysical properties of proton tracks of energies 1 keV to 300 MeV in wateren
heal.typejournalArticle-
heal.type.enJournal articleen
heal.type.elΆρθρο Περιοδικούel
heal.identifier.primary10.3109/09553002.2010.518204-
heal.identifier.secondaryhttp://www.ncbi.nlm.nih.gov/pubmed/21281230-
heal.identifier.secondaryhttp://informahealthcare.com/doi/abs/10.3109/09553002.2010.518204-
heal.languageen-
heal.accesscampus-
heal.recordProviderΠανεπιστήμιο Ιωαννίνων. Σχολή Επιστημών Υγείας. Τμήμα Ιατρικήςel
heal.publicationDate2011-
heal.abstractPURPOSE: To investigate physical and biophysical properties of proton tracks 1 keV-300 MeV using Monte Carlo track structure methods. MATERIALS AND METHODS: We present model calculations for cross sections and methods for simulations of full-slowing-down proton tracks. Protons and electrons were followed interaction-by-interaction to cut-off energies, considering elastic scattering, ionisation, excitation, and charge-transfer. RESULTS: Model calculations are presented for singly differential and total cross sections, and path lengths and stopping powers as a measure of the code evaluation. Depth-dose distributions for 160 MeV protons are compared with experimental data. Frequencies of energy loss by electron interactions increase from approximately 3% for 10 keV to approximately 77% for 300 MeV protons, and electrons deposit >70% of the dose in 160 MeV tracks. From microdosimetry calculations, 1 MeV protons were found to be more effective than 5-300 MeV in energy depositions greater than 25, 50, and 500 eV in cylinders of diameters and lengths 2, 10, and 100 nm, respectively. For lower-energy depositions, higher-energy protons are more effective. Decreasing the target size leads to the reduction of frequency- and dose-mean lineal energies for protons <1 MeV, and conversely for higher-energy protons. CONCLUSIONS: Descriptions of proton tracks at molecular levels facilitate investigations of track properties, energy loss, and microdosimetric parameters for radiation biophysics, radiation therapy, and space radiation research.en
heal.journalNameInt J Radiat Biolen
heal.journalTypepeer-reviewed-
heal.fullTextAvailabilityTRUE-
Appears in Collections:Άρθρα σε επιστημονικά περιοδικά ( Ανοικτά) - ΙΑΤ

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