Helium pencil beam commissioning and beam modeling

IF 3.2 Q2 ONCOLOGY Physics and Imaging in Radiation Oncology Pub Date : 2026-07-01 Epub Date: 2026-07-26 DOI:10.1016/j.phro.2026.101046
Lukas Martin, Barbara Knäusl, Peter Kuess, Dietmar Georg, Hugo Palmans, Lorenz Wolf, Nadia Gambino, Fabio Farinon, Andrej Prochazka, Mansure Schafasand, Lars Glimelius, Walter Ikegami Andersson, Daniel Simon Colomar, Antonio Carlino, Markus Stock, Hermann Fuchs
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Abstract

Background and Purpose:

Helium ions combine reduced lateral scattering compared to protons and a lower fragmentation tail than carbon ions, enabling sharp dose gradients and improved normal tissue sparing. This study reports the commissioning of a scanned helium pencil beam line and validation of its corresponding beam model.

Materials and Methods:

Synchrotron-based helium ion beams were commissioned covering energies from 54.6 to 402.8 MeV/u. Depth–dose curves were measured and absolute dose calibration was performed. Beam optics (spot size, position, and intraspill stability) were evaluated for various spill lengths. A beam model was implemented in the RayStation treatment planning system (TPS) and validated through 2D absolute dose measurements in homogeneous and heterogeneous phantoms and 3D measurements of cubic spread-out Bragg peak fields. Gamma-index analysis and Monte Carlo (MC) simulations with GATE/Geant4 were performed for benchmarking.

Results:

Measured ranges agreed with MC simulations within ±0.3 mm. Spot sizes decreased with energy, independently of the spill length. Spot positions remained within ±0.5 mm and intraspill variations were 0.2 mm (position) and 5.4 % (size). TPS-predicted doses agreed within 0.1 %. For 3D validations in homogeneous phantoms, the dose differences were generally within 2 %. Median gamma pass rates exceeded 90 % for 3 %/1.5 mm and 95 % for 5 %/1.5 mm. For the heterogeneous phantom, differences were within -3.2 %.

Conclusions:

Stable scanned beam delivery with helium ions was established. Validation demonstrated strong agreement between measurements, TPS calculations, and MC simulations, supporting research and future clinical application.

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氦铅笔束调试和束建模
背景和目的:与质子相比,氦离子具有更低的横向散射和比碳离子更低的碎片尾,可以实现急剧的剂量梯度和改善正常组织的保留。本研究报告了扫描氦气铅笔束流线的调试和相应束流模型的验证。材料与方法:同步加速器氦离子束的能量范围为54.6 ~ 402.8 MeV/u。测量深度-剂量曲线并进行绝对剂量校准。光束光学(光斑大小、位置和溢油内稳定性)在不同的溢油长度下进行了评估。在RayStation治疗计划系统(TPS)中实现了光束模型,并通过均匀和非均匀幻象中的二维绝对剂量测量以及立方展开布拉格峰场的三维测量进行了验证。使用GATE/Geant4进行gamma指数分析和蒙特卡罗(MC)模拟以进行基准测试。结果:测量范围与MC模拟在±0.3 mm范围内一致。光斑大小随能量的增加而减小,与泄漏长度无关。斑点位置保持在±0.5 mm范围内,滴内变化≤0.2 mm(位置),≤5.4%(大小)。tps预测的剂量在0.1%以内一致。对于均匀幻象的三维验证,剂量差异通常在2%以内。3% /1.5 mm的中位伽马通过率超过90%,5% /1.5 mm的中位伽马通过率超过95%。对于异质幻像,差异在- 3.2%以内。结论:建立了稳定的氦离子扫描光束传输。验证表明测量、TPS计算和MC模拟之间的一致性很强,支持研究和未来的临床应用。
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来源期刊
Physics and Imaging in Radiation Oncology
Physics and Imaging in Radiation Oncology Physics and Astronomy-Radiation
CiteScore
5.30
自引率
18.90%
发文量
93
审稿时长
6 weeks
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