Related Experiment Video
Updated: Aug 19, 2026

Proton Therapy Delivery and Its Clinical Application in Select Solid Tumor Malignancies
Published on: February 6, 2019
Angular distributions of secondary neutron and photon ambient dose equivalent in proton therapy: a systematic PHITS
Thi Yen Hong Huynh1,2,3, Huu Ngan Thy Truong1,2,3, Hai Hong Vo2,3
1Nuclear Technique Laboratory, University of Science, Ho Chi Minh City, Vietnam.
Abstract:
Monte Carlo simulation of secondary neutron and photon dosimetry-specifically the ambient dose equivalent H*(10)-is central to radiation protection in pencil-beam scanning (PBS) proton therapy. We report particle and heavy ion transport code system (PHITS) version 3.35 calculations of H*(10) for proton beams from 70 to 250MeV incident on a water phantom representative of the Ion Beam Applications Blue Phantom, scored at 11 emission angles at 80 cm using International Commission on Radiological Protection Publication 74 fluence-to-dose conversion coefficients. Results are normalised to peak absorbed dose, yielding the quantity H*(10)/D [nSv Gy-1] relevant to facility shielding and patient out-of-field dose estimation. The distal Bragg-peak range R80 was benchmarked against independent Geant4/Gate calculations, agreeing within -0.56% to -3.61% and meeting the ±3% clinical criterion for energies⩾ 100MeV. Enabling the low-energy neutron event-generator mode changed secondary-neutron yields by less than 0.2%, indicating that default settings are adequate for these radiation-protection estimates. The H*(10)/D angular distribution showed a forward maximum near 40° and a backward maximum at 180°; the forward-to-lateral ratio H*(40°)/H*(90°) rose from 1.1 at 70 MeV to 2.5 at 250MeV-the forward peak becoming the global maximum above 150 MeV-while neutrons exceeded photons at 90° by factors of 22.9-56.2. A representative PBS nozzle model was added to quantify the effect of beam-line components; the simulated forward energy dependence and neutron spectral composition agree with published pencil-beam-scanning measurements, while absolute magnitudes remain lower owing to the single-pencil bare-phantom geometry. For a 150 MeV spread-out Bragg peak, H*(10)/D was 4.8-6.2× higher than the monoenergetic beam, reflecting the larger number of protons required per unit dose. The dose-normalised dataset provides a systematic, practical reference for PHITS users in proton therapy radiation protection.
More Related Videos
07:57Positron Emission Tomography-based Dose Painting Radiation Therapy in a Glioblastoma Rat Model using the Small Animal Radiation Research Platform
Published on: March 24, 2022
09:49A Whole Body Dosimetry Protocol for Peptide-Receptor Radionuclide Therapy (PRRT): 2D Planar Image and Hybrid 2D+3D SPECT/CT Image Methods
Published on: April 24, 2020
Related Concept Videos
Biological Effects of Radiation
Types of Radioactivity
Alpha (α) decay is the emission of an α particle from the nucleus. For example, polonium-210 undergoes α decay:
Positron Emission Tomography
One of the main requirements of a PET scan is a positron-emitting radioisotope, which is produced in a cyclotron and then attached to a substance used by the part of the body being...
Nuclear Transmutation