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Optimization of target materials for a 3 MeV proton-driven accelerator neutron source for boron neutron capture therapy.

Created on 17 Jul 2026

Authors

Ameer Mukhtar, Jie Li, Zhifeng Li, Sheng Wang, Muhamad Haris Malik

Published in

Applied radiation and isotopes : including data, instrumentation and methods for use in agriculture, industry and medicine. Volume 237. Pages 112804. Jul 10, 2026. Epub Jul 10, 2026.

Abstract

Choosing the right target material for a 3 MeV (10 mA, 30 kW beam power) proton-driven accelerator-based boron neutron capture therapy (AB-BNCT) system is far from straightforward a material that produces the most neutrons under proton bombardment does not necessarily deliver the best therapeutic beam. This paper addresses that gap through a systematic two-phase PHITS (version 3.28) study of four candidate targets: lithium (Li), beryllium (Be), beryllium oxide (BeO), and iron (Fe), simulated over target thicknesses of 0.01-1.4 cm. In Phase 1 (proton-driven), lithium produced the highest raw thermal neutron flux - 7.69 × 1010 n/cm2·s at 1.4 cm - but beryllium's fast neutron dose per unit thermal flux was roughly 50% lower, indicating a considerably cleaner radiation field. Phase 2 (neutron-driven transport) told a very different story: beryllium developed the highest internal thermal neutron flux, 5.17 × 1014 n/cm2·s, driven by its neutron multiplication and moderation properties. Clinical dosimetry using three point detectors (F75, F85, F95) at z = 150, 155, and 160 cm along the BSA beam axis yielded, for the neutron-driven beryllium configuration: thermal flux of 6.03 × 109, 5.65 × 109, and 5.30 × 109 n/cm2·s (Phase 2) and 5.34 × 109, 5.00 × 109, and 4.69 × 109 n/cm2·s (Phase 1); average dose delivery rates (ADDR) of 7.29, 6.82, and 6.40 RBE-cGy/min (Phase 2) and 6.45, 6.04, and 5.67 RBE-cGy/min (Phase 1); and treatment times of 4.12, 4.40, and 4.69 min (Phase 2) and 4.65, 4.97, and 5.29 min (Phase 1) for a 30 Gy-eq prescription - a 6.6-fold improvement over the best published compact AB-BNCT design at comparable proton energy. Taken together, these results make a compelling case for beryllium as the optimal target material for compact 3 MeV AB-BNCT systems.

PMID:
42462338
Bibliographic data and abstract were imported from PubMed on 17 Jul 2026.

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