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用于治疗性 X 射线束中的体内剂量学的柔性非晶硅(a-Si:H)探测器的特性描述。

Characterization of a flexible a-Si:H detector for in vivo dosimetry in therapeutic x-ray beams.

机构信息

Centre for Medical Radiation Physics, University of Wollongong, Wollongong, New South Wales, Australia.

School of Physics, Najran University, Najran, Saudi Arabia.

出版信息

Med Phys. 2024 Jun;51(6):4489-4503. doi: 10.1002/mp.17013. Epub 2024 Mar 3.

DOI:10.1002/mp.17013
PMID:38432192
Abstract

BACKGROUND

The increasing use of complex and high dose-rate treatments in radiation therapy necessitates advanced detectors to provide accurate dosimetry. Rather than relying on pre-treatment quality assurance (QA) measurements alone, many countries are now mandating the use of in vivo dosimetry, whereby a dosimeter is placed on the surface of the patient during treatment. Ideally, in vivo detectors should be flexible to conform to a patient's irregular surfaces.

PURPOSE

This study aims to characterize a novel hydrogenated amorphous silicon (a-Si:H) radiation detector for the dosimetry of therapeutic x-ray beams. The detectors are flexible as they are fabricated directly on a flexible polyimide (Kapton) substrate.

METHODS

The potential of this technology for application as a real-time flexible detector is investigated through a combined dosimetric and flexibility study. Measurements of fundamental dosimetric quantities were obtained including output factor (OF), dose rate dependence (DPP), energy dependence, percentage depth dose (PDD), and angular dependence. The response of the a-Si:H detectors investigated in this study are benchmarked directly against commercially available ionization chambers and solid-state diodes currently employed for QA practices.

RESULTS

The a-Si:H detectors exhibit remarkable dose linearities in the direct detection of kV and MV therapeutic x-rays, with calibrated sensitivities ranging from (0.580 ± 0.002) pC/cGy to (19.36 ± 0.10) pC/cGy as a function of detector thickness, area, and applied bias. Regarding dosimetry, the a-Si:H detectors accurately obtained OF measurements that parallel commercially available detector solutions. The PDD response closely matched the expected profile as predicted via Geant4 simulations, a PTW Farmer ionization chamber and a PTW ROOS chamber. The most significant variation in the PDD performance was 5.67%, observed at a depth of 3 mm for detectors operated unbiased. With an external bias, the discrepancy in PDD response from reference data was confined to ± 2.92% for all depths (surface to 250 mm) in water-equivalent plastic. Very little angular dependence is displayed between irradiations at angles of 0° and 180°, with the most significant variation being a 7.71% decrease in collected charge at a 110° relative angle of incidence. Energy dependence and dose per pulse dependence are also reported, with results in agreement with the literature. Most notably, the flexibility of a-Si:H detectors was quantified for sample bending up to a radius of curvature of 7.98 mm, where the recorded photosensitivity degraded by (-4.9 ± 0.6)% of the initial device response when flat. It is essential to mention that this small bending radius is unlikely during in vivo patient dosimetry. In a more realistic scenario, with a bending radius of 15-20 mm, the variation in detector response remained within ± 4%. After substantial bending, the detector's photosensitivity when returned to a flat condition was (99.1 ± 0.5)% of the original response.

CONCLUSIONS

This work successfully characterizes a flexible detector based on thin-film a-Si:H deposited on a Kapton substrate for applications in therapeutic x-ray dosimetry. The detectors exhibit dosimetric performances that parallel commercially available dosimeters, while also demonstrating excellent flexibility results.

摘要

背景

在放射治疗中,越来越多地使用复杂和高剂量率的治疗方法,这就需要先进的探测器来提供准确的剂量测量。许多国家不再仅仅依靠治疗前的质量保证(QA)测量,而是现在都要求使用体内剂量测量,即在治疗过程中在患者的表面放置剂量计。理想情况下,体内探测器应该具有灵活性,以适应患者的不规则表面。

目的

本研究旨在对一种新型氢化非晶硅(a-Si:H)辐射探测器进行治疗性 X 射线剂量测量的特性进行研究。由于这些探测器是直接在柔性聚酰亚胺(Kapton)基底上制造的,因此具有很好的柔性。

方法

通过剂量测量和柔性研究相结合,研究了这种技术作为实时柔性探测器的应用潜力。获得了包括输出因子(OF)、剂量率依赖性(DPP)、能量依赖性、百分深度剂量(PDD)和角度依赖性在内的基本剂量学参数的测量结果。研究中使用的 a-Si:H 探测器的响应直接与目前用于 QA 实践的商用电离室和固态二极管进行了基准比较。

结果

a-Si:H 探测器在直接检测千伏和兆伏治疗性 X 射线时表现出显著的剂量线性度,校准灵敏度范围从(0.580±0.002)pC/cGy 到(19.36±0.10)pC/cGy,这取决于探测器的厚度、面积和施加的偏置电压。在剂量测量方面,a-Si:H 探测器能够准确地获得与商用探测器解决方案相匹配的 OF 测量结果。PDD 响应与 Geant4 模拟、PTW Farmer 电离室和 PTW ROOS 室预测的预期轮廓非常吻合。在所有深度(从表面到 250mm)的水等效塑料中,PDD 性能的最大差异为 5.67%,这是在未施加偏置电压的情况下在 3mm 深度处观察到的。施加外部偏置电压后,参考数据的 PDD 响应差异限制在±2.92%以内。在 0°和 180°之间的照射角度下,几乎没有显示出角度依赖性,最显著的变化是在相对入射角为 110°时收集的电荷减少了 7.71%。还报告了能量依赖性和脉冲剂量依赖性的结果,与文献一致。值得注意的是,对 a-Si:H 探测器的柔性进行了量化,最大弯曲半径可达 7.98mm,当探测器处于平坦状态时,记录的灵敏度下降了初始设备响应的(-4.9±0.6)%。必须提到的是,在体内患者剂量测量中,这种小的弯曲半径不太可能出现。在更现实的情况下,弯曲半径为 15-20mm 时,探测器的响应变化仍在±4%以内。在大幅度弯曲后,探测器在恢复到平坦状态时的灵敏度为原始响应的(99.1±0.5)%。

结论

本工作成功地对基于沉积在 Kapton 基底上的薄膜 a-Si:H 的柔性探测器进行了特性描述,可用于治疗性 X 射线剂量测量。探测器的剂量学性能与商用剂量计相媲美,同时还表现出优异的柔性性能。

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