Published September 1, 2019 | Version v1
Journal article

EPR imaging of magnetic field effects on radiation dose distributions around millimeter-size air cavities

  • 1. Department of Chemistry and Konstanz Research School Chemical Biology, University of Konstanz, Konstanz (Germany)
  • 2. Division of Medical Radiation Physics and Department of Radiation Oncology, Inselspital, Bern University Hospital and University of Bern, Bern (Switzerland)
  • 3. Klinik und Praxis für Strahlentherapie am Klinikum Konstanz, Konstanz (Germany)
  • 4. Laboratory of Experimental Radiotherapy, Department of Oncology, KU Leuven, Leuven (Belgium)

Description

New hybrid radiotherapy treatment systems combining an MRI scanner with a source of ionizing radiation are being introduced in the clinic. The strong magnetic fields of MRI considerably affect radiation dose distributions, especially at tissue-air interfaces due to the electron return effect (ERE). Experimental investigation of the ERE within a sub-millimeter thick surface layer is still highly challenging.

In the present work, we examine and quantify the magnetic field induced perturbations of dose distributions within a 0.5 mm layer surrounding millimeter-size air cavities by applying electron paramagnetic resonance imaging (EPRI).

Air-filled fused quartz tubes (inner diameter 3 or 4 mm) mimic small air cavities and serve as model systems. The tubes were irradiated inside a PMMA phantom by a 6 MV photon beam. The irradiations were performed in the presence or absence of a transverse, magnetic field providing a magnetic field strength of 1.0 Tesla. The spatial distributions of radiation induced paramagnetic defects in the quartz tubes were subsequently determined by applying field-swept echo-detected EPRI and were then converted to relative dose distributions.

The transverse magnetic field leads to considerable local dose enhancements and reductions (up to 35%) with respect to the mean dose within the quartz tubes. The experimentally determined dose distributions are in good quantitative agreement with Monte Carlo radiation transport simulations.

The results of this work demonstrate the feasibility of field-swept echo-detected EPRI to measure magnetic field induced perturbations of dose distributions within a sub-millimeter thick surface layer at the dosimeter-air interface. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1361-6560/ab325b

Additional details

Identifiers

Publishing Information

Journal Title
Physics in Medicine and Biology
Journal Volume
64
Journal Issue
17
Journal Page Range
[13 p.]
ISSN
0031-9155
CODEN
PHMBA7