Literature DB >> 2020734

A Monte Carlo investigation of the dosimetric properties of monoenergetic neutron beams for neutron capture therapy.

J C Yanch1, X L Zhou, G L Brownell.   

Abstract

A Monte Carlo simulation study has been carried out to investigate the suitability of neutron beams of various energies for therapeutic efficacy in boron neutron capture therapy. The dosimetric properties of unidirectional, monoenergetic neutron beams of varying diameters in two different phantoms (a right-circular cylinder and an ellipsoid) made of brain-equivalent material were examined. The source diameter was varied from 0.0 to 20.0 cm; neutron energies ranged from 0.025 eV up to 800 keV, the maximum neutron energy generated by a tandem cascade accelerator using 2.5-MeV protons in a 7Li(p,n)7Be reaction. Such a device is currently under investigation for use as a neutron source for boron neutron capture therapy. The simulation studies indicate that the maximum effective treatment depth (advantage depth) in the brain is 10.0 cm and is obtainable with a 10-keV neutron beam. A useful range of energies, defined as those neutron energies capable of effectively treating to a depth of 7 cm in brain tissue, is found to be 4.0 eV to 40.0 keV. Beam size is shown not to affect advantage depth as long as the entire phantom volume is used in determining this depth. Dose distribution in directions parallel to and perpendicular to the beam direction are shown to illustrate this phenomenon graphically as well as to illustrate the differences in advantage depth and advantage ratio and the contribution of individual dose components to tumor dose caused by the geometric differences in phantom shape.

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Year:  1991        PMID: 2020734

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  3 in total

Review 1.  Physics of epi-thermal boron neutron capture therapy (epi-thermal BNCT).

Authors:  Ryoichi Seki; Yushi Wakisaka; Nami Morimoto; Masaaki Takashina; Masahiko Koizumi; Hiroshi Toki; Mitsuhiro Fukuda
Journal:  Radiol Phys Technol       Date:  2017-11-20

2.  A Novel Approach to Design and Evaluate BNCT Neutron Beams Combining Physical, Radiobiological, and Dosimetric Figures of Merit.

Authors:  Ian Postuma; Sara González; Maria S Herrera; Lucas Provenzano; Michele Ferrarini; Chiara Magni; Nicoletta Protti; Setareh Fatemi; Valerio Vercesi; Giuseppe Battistoni; Umberto Anselmi Tamburini; Yuan Hao Liu; Leena Kankaanranta; Hanna Koivunoro; Saverio Altieri; Silva Bortolussi
Journal:  Biology (Basel)       Date:  2021-02-26

3.  Evaluation of a treatment planning system developed for clinical boron neutron capture therapy and validation against an independent Monte Carlo dose calculation system.

Authors:  Naonori Hu; Hiroki Tanaka; Ryo Kakino; Syuushi Yoshikawa; Mamoru Miyao; Kazuhiko Akita; Kayako Isohashi; Teruhito Aihara; Keiji Nihei; Koji Ono
Journal:  Radiat Oncol       Date:  2021-12-24       Impact factor: 3.481

  3 in total

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