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Characterization of nanoDot optically stimulated luminescence detectors and high‐sensitivity MCP MCP ‐N thermoluminescent detectors in the 40–300? kV kV p energy range

机译:纳米型光学刺激发光探测器的表征和高灵敏度MCP-N在40-300中的热敏发光探测器? kV kv p能量范围

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Purpose To investigate empirically the energy dependence of the detector response of two in?vivo luminescence detectors, LiF:Mg,Cu,P ( MCP ‐N) high‐sensitivity TLD s and Al 2 O 3 :C OSLD s, in the 40–300‐ kV p energy range in the context of in?vivo surface dose measurement. As these detectors become more prevalent in clinical and preclinical in?vivo measurements, knowledge of the variation in the empirical dependence of the measured response of these detectors across a wide spectrum of beam qualities is important. Method We characterized a large range of beam qualities of three different kilovoltage x‐ray units: an Xstrahl 300 Orthovoltage unit, a Precision x‐Ray X‐ RAD 320ix biological irradiator, and a Varian On‐Board Imaging x‐ray unit. The dose to water was measured in air according to the AAPM 's Task Group 61 protocol. The OSLD s and TLD s were irradiated under reference conditions on the surface of a water phantom to provide full backscatter conditions. To assess the change in sensitivity in the long term, we separated the in?vivo dosimeters of each type into an experimental and a reference group. The experimental dosimeters were irradiated using the kilovoltage x‐ray units at each beam quality used in this investigation, while the reference group received a constant 10? cG y irradiation at 6? MV from a Varian clinical linear accelerator. The individual calibration of each detector was verified in cycles where both groups received a 10? cG y irradiation at 6?MV. Results The nanoDot OSLD s were highly reproducible, with ±1.5% variation in response following 40 measurement cycles. The TLD s lost ~20% of their signal sensitivity over the course of the study. The relative light output per unit dose to water of the MCP ‐N TLD s did not vary with beam quality for beam qualities with effective energies 50?keV (~150? kV p/6?mm?Al). At higher energies, they showed a reduced (~75–85%) light output per unit dose relative to 6? MV x rays. The nanoDot OSLD s exhibited a very strong (120–408%) dependency of the light output relative to 6 MV x rays. Variations up to 15% between different x‐ray units with equivalent effective energies were also observed. Conclusions While convenient for clinical use, nanoDot OSLD s exhibit a strong variation in their measured light output per unit dose relative to 6? MV in the 40–300? kV x‐ray range. This variability differs unit‐to‐unit, limiting their effective use for in?vivo dosimetry applications in the kilovoltage x‐ray energy range. MCP ‐N TLD s offer a much more stable response, but suffer from variations in sensitivity over time dependent on radiation history, which requires careful experimental handling.
机译:目的要验证探测仪的探测器响应的能量依赖性两者的探测器响应,LIF:Mg,Cu,P(MCP-N)高灵敏度TLD S和Al 2 O 3:C OSLD S,在40- 300-kV P能量范围在α体内表面剂量测量的背景下。由于这些探测器在临床和临床前变得更普遍的临床和临床前的Δvivo测量,因此了解这些探测器对广谱谱的测量响应的经验依赖性的变化很重要。方法,我们特征在于三种不同千伏X射线单元的大范围的光束品质:Xstrahl 300 orthovoltage单元,精密X射线X-Rad 320ix生物辐照器,以及瓦里亚车载成像X射线单元。根据AAPM任务组61协议在空气中测量水的剂量。 OSLD S和TLD S在水体幻影表面的参考条件下照射,以提供完整的反散射条件。为了在长期评估灵敏度的变化,我们将每种类型的in?体内剂量计分开到实验和参考组中。在本研究中使用的每个光束质量下,使用千伏电压X射线单元照射实验剂量计,而参考组接收恒定10? CG Y照射在6?来自Varian临床线性加速器的MV。每个探测器的个体校准都在循环中验证,其中两个组接收到10? CG Y照射在6?mV。结果Nanodot OSLD S高度可重复,响应后的±1.5%变化率为40测量循环。在研究过程中,TLD S失去了其信号敏感性的20%。每单位剂量与MCP -N TLD S的水的相对光输出没有随比光束质量而变化,具有有效能量的光束质量& 50?kev(〜150?kV p / 6?mm?al)。在更高的能量下,它们显示每单位剂量的减少(〜75-85%),相对于6℃? mv x射线。 NANODOT OSLD S表现出非常强的(120-408%)光输出相对于6 mV X射线的依赖性。还观察到具有等同有效能量的不同X射线单元之间的变化高达15%。结论虽然方便的临床用途,但纳米多特OSLD S在相对于6℃的测量光输出中表现出强大变化? MV在40-300? KV X射线范围。这种可变性与单元到单元不同,限制了它们在千伏X射线能量范围内的体内剂量测定应用的有效用途。 MCP -N TLD S提供更稳定的响应,但遭受敏感性的变化,这些变化依赖于辐射历史,这需要仔细的实验​​处理。

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