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研究在铅笔束扫描质子治疗中平板探测器的线性能量传递(LET)依赖性行为和剂量响应。

Investigation of linear energy transfer (LET)-dependence behavior and dosimetric response of a flat-panel detector in pencil beam scanning proton therapy.

机构信息

University of Florida Health Proton Therapy Institute, Jacksonville, FL, USA; Department of Radiation Oncology, University of Florida College of Medicine, Gainesville, FL, USA.

University of Florida Health Proton Therapy Institute, Jacksonville, FL, USA; Medical Physics Graduate Program, University of Florida College of Medicine, Gainesville, FL, USA.

出版信息

Phys Med. 2024 Sep;125:104508. doi: 10.1016/j.ejmp.2024.104508. Epub 2024 Aug 25.

Abstract

PURPOSE

This study aims to elucidate the dependence of the flat-panel detector's response on the linear energy transfer (LET) and evaluate the practical viability of employing flat-panel detectors in proton dosimetry applications through LET-dependent correction factors.

METHODS

The study assessed the flat-panel detector's response across varying depths using solid water and distinct 100, 150, and 200 MeV proton beams by comparing the flat-panel readings against reference doses measured with an ionization chamber. A Monte Carlo code was used to derive LET values, and an LET-dependent response correction factor was determined based on the ratio of the uncorrected flat-panel dose to the ionization chamber dose. The implications of this under-response correction were validated by applying it to a measurement involving a spread-out Bragg peak (SOBP), followed by a comparative analysis against doses calculated using the Monte Carlo code and MatriXX ONE measurement.

RESULTS

The association between LET and the flat-panel detector's under-response displayed a positive correlation that intensified with increasing LET values. Notably, with a 10 keV/µm LET value, the detector's under-response reached 50 %, while the measurement points in the SOBP demonstrated under-response greater than 20 %. However, post-correction, the adjusted flat-panel profile closely aligned with the Monte Carlo profile, yielding a 2-dimensional 3 %/3mm gamma passing rate of 100 % at various verification depths.

CONCLUSION

This study successfully defined the link between LET and the responsiveness of flat-panel detectors for proton dosimetric measurements and established a foundational framework for integrating flat-panel detectors in clinical proton dosimetry applications.

摘要

目的

本研究旨在阐明平板探测器响应与线性能量传递(LET)的关系,并通过 LET 相关修正因子评估平板探测器在质子剂量测量中的实际应用可行性。

方法

本研究通过对比平板读数与电离室测量的参考剂量,评估了在不同深度下使用固体水和不同能量(100、150 和 200 MeV)质子束的平板探测器响应。使用蒙特卡罗代码推导出 LET 值,并根据未经修正的平板剂量与电离室剂量的比值确定 LET 相关响应修正因子。通过对扩展布拉格峰(SOBP)的测量应用此欠响应修正,并与蒙特卡罗代码和 MatriXX ONE 测量计算的剂量进行比较分析,验证了此修正的意义。

结果

LET 与平板探测器欠响应之间存在正相关关系,随着 LET 值的增加而增强。值得注意的是,当 LET 值为 10 keV/µm 时,探测器的欠响应达到 50%,而 SOBP 中的测量点显示出大于 20%的欠响应。然而,经修正后,调整后的平板轮廓与蒙特卡罗轮廓非常吻合,在不同验证深度下,二维 3%/3mm 伽马通过率达到 100%。

结论

本研究成功定义了 LET 与平板探测器在质子剂量测量中的响应之间的关系,并为将平板探测器整合到临床质子剂量测量应用中奠定了基础。

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