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评估电离室在电子 FLASH 放疗中的响应。

Evaluation of ion chamber response for applications in electron FLASH radiotherapy.

机构信息

Division of Radiation Oncology, Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, Houston, Texas, USA.

UTHealth Houston Graduate School of Biomedical Sciences, The University of Texas MD Anderson Cancer Center, Houston, Texas, USA.

出版信息

Med Phys. 2024 Jan;51(1):494-508. doi: 10.1002/mp.16726. Epub 2023 Sep 11.

Abstract

Ion chambers are required for calibration and reference dosimetry applications in radiation therapy (RT). However, exposure of ion chambers in ultra-high dose rate (UHDR) conditions pertinent to FLASH-RT leads to severe saturation and ion recombination, which limits their performance and usability. The purpose of this study was to comprehensively evaluate a set of commonly used commercially available ion chambers in RT, all with different design characteristics, and use this information to produce a prototype ion chamber with improved performance in UHDR conditions as a first step toward ion chambers specific for FLASH-RT. The Advanced Markus and Exradin A10, A26, and A20 ion chambers were evaluated. The chambers were placed in a water tank, at a depth of 2 cm, and exposed to an UHDR electron beam at different pulse repetition frequency (PRF), pulse width (PW), and pulse amplitude settings on an IntraOp Mobetron. Ion chamber responses were investigated for the various beam parameter settings to isolate their dependence on integrated dose, mean dose rate and instantaneous dose rate, dose-per-pulse (DPP), and their design features such as chamber type, bias voltage, and collection volume. Furthermore, a thin parallel-plate (TPP) prototype ion chamber with reduced collector plate separation and volume was constructed and equally evaluated as the other chambers. The charge collection efficiency of the investigated ion chambers decreased with increasing DPP, whereas the mean dose rate did not affect the response of the chambers (± 1%). The dependence of the chamber response on DPP was found to be solely related to the total dose within the pulse, and not on mean dose rate, PW, or instantaneous dose rate within the ranges investigated. The polarity correction factor (P ) values of the TPP prototype, A10, and Advanced Markus chambers were found to be independent of DPP and dose rate (± 2%), while the A20 and A26 chambers yielded significantly larger variations and dependencies under the same conditions. Ion chamber performance evaluated under different irradiation conditions of an UHDR electron beam revealed a strong dependence on DPP and a negligible dependence on the mean and instantaneous dose rates. These results suggest that modifications to ion chambers design to improve their usability in UHDR beamlines should focus on minimizing DPP effects, with emphasis on optimizing the electric field strength, through the construction of smaller electrode separation and larger bias voltages. This was confirmed through the production and evaluation of a prototype ion chamber specifically designed with these characteristics.

摘要

离子室是放射治疗(RT)校准和参考剂量测量应用所必需的。然而,在与 FLASH-RT 相关的超高剂量率(UHDR)条件下,离子室的暴露会导致严重的饱和和离子复合,从而限制了它们的性能和可用性。本研究的目的是全面评估一组在 RT 中常用的具有不同设计特点的商业上可用的离子室,并利用这些信息来制作一种在 UHDR 条件下具有改进性能的原型离子室,作为专门为 FLASH-RT 设计离子室的第一步。评估了 Advanced Markus 和 Exradin A10、A26 和 A20 离子室。将腔室放置在水箱中,深度为 2 厘米,并在 IntraOp Mobetron 上以不同的脉冲重复频率(PRF)、脉冲宽度(PW)和脉冲幅度设置暴露于 UHDR 电子束下。研究了不同束参数设置下的离子室响应,以隔离它们对积分剂量、平均剂量率和瞬时剂量率、剂量脉冲比(DPP)以及它们的设计特性(如腔室类型、偏置电压和收集体积)的依赖性。此外,还构建了一个具有减小收集板分离和体积的薄平行板(TPP)原型离子室,并与其他腔室进行了同等评估。在所研究的范围内,随着 DPP 的增加,所研究的离子室的电荷收集效率降低,而平均剂量率对腔室的响应没有影响(±1%)。发现腔室响应对 DPP 的依赖性仅与脉冲内的总剂量有关,而与平均剂量率、PW 或脉冲内的瞬时剂量率无关。在不同的 UHDR 电子束照射条件下,TPP 原型、A10 和 Advanced Markus 腔室的极性校正因子(P)值被发现与 DPP 和剂量率无关(±2%),而 A20 和 A26 腔室在相同条件下表现出明显更大的变化和依赖性。在 UHDR 电子束的不同辐照条件下评估的离子室性能表明,对 DPP 的依赖性很强,对平均和瞬时剂量率的依赖性可以忽略不计。这些结果表明,为了提高离子室在 UHDR 射束线上的可用性,对离子室设计进行修改应侧重于最小化 DPP 效应,通过构建更小的电极分离和更大的偏置电压来优化电场强度。这通过专门设计具有这些特性的原型离子室的生产和评估得到了证实。

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