Sharp dose profiles for high precision proton therapy using focused proton beams
Fardous Reaz, Kyrre Ness Sjobak, Eirik Malinen, Nina Frederike, Jeppesen Edin, Erik Adli

TL;DR
This study develops and compares techniques for producing narrow, focused proton beams to improve dose precision in proton therapy, demonstrating that magnetic focusing significantly enhances dose conformity and target dose.
Contribution
The paper introduces and evaluates three novel proton beam shaping techniques, highlighting the effectiveness of magnetic focusing for high-precision proton therapy.
Findings
Focused beams yield higher target to surface dose ratios.
Magnetic focusing produces smaller transverse beam sizes (~1.5 mm).
High-energy focused beams achieve TSDRs over 100.
Abstract
Proton beam therapy has been developed to irradiate the tumor with higher precision and dose conformity compared to conventional X-ray irradiation. The dose conformity of this treatment modality may be further improved if narrower proton beams are used. Still, this is limited by multiple Coulomb scattering of protons through tissue. The primary aim of this work was to develop techniques to produce narrow proton beams and investigate the resulting dose profiles. We introduced and assessed three different proton beam shaping techniques: 1) metal collimators (100/150~MeV), 2) focusing of conventional- (100/150~MeV), and 3) focusing of high-energy (350~MeV, shoot-through) proton beams. Focusing was governed by the initial value of the Twiss parameter ~(), and can be implemented with magnetic particle accelerator optics. The dose distributions in water were calculated by…
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Taxonomy
TopicsRadiation Therapy and Dosimetry · Particle accelerators and beam dynamics · Particle Accelerators and Free-Electron Lasers
