Abstract

One of the major advantages of proton or ion beams, applied in cancer treatment, is their excellent depth-dose profile exhibiting a low dose in the entrance channel and a distinct dose maximum (Bragg peak) near the end of range in tissue. In the region of the Bragg peak, where the protons or ions are almost stopped, experimental studies with low-energy particle beams and thin biological samples may contribute valuable information on the biological effectiveness in the stopping region. Such experiments, however, require beam optimization and special dosimetry techniques for determining the absolute dose and dose homogeneity for very thin biological samples. At the National Centre of Accelerators in Seville, one of the beam lines at the 3 MV Tandem Accelerator was equipped with a scattering device, a special parallel-plate ionization chamber with very thin electrode foils and target holders for cell cultures. In this work, we present the calibration in absolute dose of EBT3 films [Gafchromic radiotherapy films, http://www.ashland.com/products/gafchromic-radiotherapy-films] for proton energies in the region of the Bragg peak, where the linear energy transfer increases and becomes more significant for radiobiology studies, as well as the response of the EBT3 films for different proton energy values. To irradiate the films in the Bragg peak region, the energy of the beam was degraded passively, by interposing Mylar foils of variable thickness to place the Bragg peak inside the active layer of the film. The results obtained for the beam degraded in Mylar foils are compared with the dose calculated by means of the measurement of the beam fluence with an ionization chamber and the energy loss predicted by srim2008 code.

Highlights

  • The use of proton beams to treat cancer has increased significantly in recent years [1]

  • We present the calibration in absolute dose of EBT3 films [Gafchromic radiotherapy films, http://www.ashland .com/products/gafchromic‐radiotherapy‐films] for proton energies in the region of the Bragg peak, where the linear energy transfer increases and becomes more significant for radiobiology studies, as well as the response of the EBT3 films for different proton energy values

  • In this work we present how a beam line has been prepared to get uniform spatial profile irradiation fields of low energy protons

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Summary

Introduction

The use of proton beams to treat cancer has increased significantly in recent years [1]. The proton therapy centers use an RBE value of 1.1 recommended by the International Commission on Radiation Units and Measurements (ICRU). To unveil this fact, it is important to perform dedicated measurements to investigate the RBE in thin slices at low proton energies. The 3 MV Tandem Accelerator at National Centre of Accelerators (CNA) in Seville provides proton beams with a maximum of energy of 6 MeV, using the SNIC II source through cesium sputtering. Such energy is suitable to implement radiobiology studies. Forthcoming studies will investigate the DNA damage produced by low energy protons which will be

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