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February 26, 2026Journal of Radiological Protection0 citationsOpen Access

To BPE or not to BPE: Neutron tenth-value layers in polyethylene with variable boron content for LINAC shielding

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MBM BellamyLCLukas M. CarterAJA Jinia

Key Points

  • To quantify the effectiveness of borated polyethylene in attenuating neutrons for LINAC shielding.
  • Performed Monte Carlo simulations across various neutron energies and boron contents.
  • Measured first and equilibrium tenth-value layers of borated polyethylene materials.
  • Modelled 73 material thicknesses and 16 neutron energy levels to estimate attenuation.
  • Validated results using the PHITS simulation tool with consistent parameters.
  • TVL values varied from 1.3 mm for thermal neutrons in borated polyethylene to 50 cm for 20 MeV neutrons in pure polyethylene.
  • Adding boron significantly reduced TVL, particularly affecting thermal energy neutrons.
  • Statistical uncertainties in thickness estimates remained below 3%.

Abstract

Borated polyethylene is an effective neutron moderator and absorber in medical linear accelerator shielding; however, there is limited data regarding the required material thickness for adequate neutron attenuation. To address the gap in shielding data, our study systematically quantifies first and equilibrium tenth-value layers (TVL1 and TVLe) for polyethylene containing 0%, 5% and 30% natural boron by weight across neutron energies ranging from thermal to fast. Comprehensive Monte Carlo simulations (n = 3504) were performed to estimate TVL thicknesses from thermal to 20 MeV neutrons. A current tally was used to count neutrons exiting the shield and determine thicknesses corresponding to 10% and 1% transmission. Sixteen energies and 73 thicknesses of materials were modelled with statistical uncertainties below 3%. TVL thicknesses were independently validated with PHITS using identical simulation parameters. We found that TVL values ranged from 1.3 mm for thermal neutrons in borated polyethylene, to 50 cm for 20 MeV neutrons in pure polyethylene. In all cases, adding boron to polyethylene reduced the TVL, with the greatest effect at thermal energies, and a smallest effect at 12 MeV. Here we provide the first comprehensive characterization of borated polyethylene's ability to attenuate neutrons, supporting shielding design for medical linear accelerators.

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Cite This Study

Bellamy et al. (2026) studied this question.

synapsesocial.com/papers/699fe2eb95ddcd3a253e6690https://doi.org/10.1088/1361-6498/ae490e
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