A simulation study for radiation treatment planning based on the atomic physics of the proton-boron fusion reaction

  • Sunmi Kim
  • , Do Kun Yoon
  • , Han Back Shin
  • , Joo Young Jung
  • , Moo Sub Kim
  • , Kyeong Hyeon Kim
  • , Hong Seok Jang
  • , Tae Suk Suh

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

The purpose of this research is to demonstrate, based on a Monte Carlo simulation code, the procedure of radiation treatment planning for proton-boron fusion therapy (PBFT). A discrete proton beam (60 - 120 MeV) relevant to the Bragg peak was simulated using a Monte Carlo n-particle extended (MCNPX, Ver. 2.6.0, National Laboratory, Los Alamos NM, USA) simulation code. After computed tomography (CT) scanning of a virtual water phantom including air cavities, the acquired CT images were converted using the simulation source code. We set the boron uptake regions (BURs) in the simulated water phantom to achieve the proton-boron fusion reaction. Proton sources irradiated the BUR, in the phantom. The acquired dose maps were overlapped with the original CT image of the phantom to analyze the dose volume histogram (DVH). We successfully confirmed amplifications of the proton doses (average: 130%) at the target regions. From the DVH result for each simulation, we acquired a relatively accurate dose map for the treatment. A simulation was conducted to characterize the dose distribution and verify the feasibility of proton-boron fusion therapy (PBFT). We observed a variation in proton range and developed a tumor-targeting technique for treatment that was more accurate and powerful than both conventional proton therapy and boron-neutron capture therapy.

Original languageEnglish
Pages (from-to)629-639
Number of pages11
JournalJournal of the Korean Physical Society
Volume70
Issue number6
DOIs
StatePublished - 1 Mar 2017

Bibliographical note

Publisher Copyright:
© 2017, The Korean Physical Society.

Keywords

  • Boron
  • Monte Carlo simulation
  • PBFT
  • Proton

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