EBT3、EBT-XD、MD-V3和HD-V2放射色膜的能量依赖性、光谱特性和取向依赖性

IF 3.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Arash Darafsheh
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引用次数: 0

摘要

目标。放射致色膜(rcf)是二维和小场剂量学中不可缺少的剂量计。不同型号的rcf与相关的动态范围是市售的,以支持各种剂量学的需要。本文研究了EBT3、EBT-XD、MD-V3和HD-V2 rcf的能量依赖性、吸收光谱和取向依赖性。根据RCF片的动态范围,使用6 MV光子束和220 kVp x射线束对其进行不同剂量水平的照射。用平板扫描仪扫描薄膜,获得红、绿、蓝三色通道的光密度。用可见分光计测定了膜的吸收光谱。在不同的方向上扫描RCF片段子集以研究方向依赖性。主要的结果。在所有四种模型中,与MV束相比,观察到kV束的响应不足。在MD-V3和HD-V2薄膜中发现了明显的剂量依赖性峰吸收谱偏移。在所有模型中都注意到取向依赖性,这些模型可以通过假设薄膜中的偏振轴来建模。所提出的工作提供了有关不同RCF模型特征的有价值的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On energy dependency, spectral properties, and orientation dependency of EBT3, EBT-XD, MD-V3, and HD-V2 radiochromic films.

Objective. Radiochromic films (RCFs) are indispensable dosimeters for two-dimensional and small field dosimetry. Different models of RCFs with associated dynamic ranges are commercially available to support various dosimetry needs. Here, we study energy dependency, absorption spectra, and orientation dependency of EBT3, EBT-XD, MD-V3, and HD-V2 RCFs.Approach. RCF pieces were irradiated at various dose levels, depending on their dynamic range, using a 6 MV photon beam and a 220 kVp x-ray beam. Films were scanned using a flatbed scanner to obtain the optical density at red, green, and blue color channels. A visible spectrometer was used to measure the absorption spectra of the films. A subset of RCF pieces were scanned at various orientation to investigate the orientation dependency.Main results. In all four models an under-response to the kV beam was observed compared to the MV beam. A noticeable dose-dependent shift in the peak absorption spectrum was noted in MD-V3 and HD-V2 films. An orientation dependency was noted in all models which can be modeled by assuming a polarization axis in the films.Significance. The presented work provides valuable information on the characteristics of different models of RCF.

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来源期刊
Physics in medicine and biology
Physics in medicine and biology 医学-工程:生物医学
CiteScore
6.50
自引率
14.30%
发文量
409
审稿时长
2 months
期刊介绍: The development and application of theoretical, computational and experimental physics to medicine, physiology and biology. Topics covered are: therapy physics (including ionizing and non-ionizing radiation); biomedical imaging (e.g. x-ray, magnetic resonance, ultrasound, optical and nuclear imaging); image-guided interventions; image reconstruction and analysis (including kinetic modelling); artificial intelligence in biomedical physics and analysis; nanoparticles in imaging and therapy; radiobiology; radiation protection and patient dose monitoring; radiation dosimetry
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