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Ruby-based inorganic scintillation detectors for 192Ir brachytherapy

机译:基于Ruby的192Ir近距离放射治疗的无机闪烁探测器

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摘要

We tested the potential of ruby inorganic scintillation detectors (ISDs) for use in brachytherapy and investigated various unwanted luminescence properties that may compromise their accuracy. The ISDs were composed of a ruby crystal coupled to a poly(methyl methacrylate) fiber-optic cable and a charge-coupled device camera. The ISD also included a long-pass filter that was sandwiched between the ruby crystal and the fiber-optic cable. The long-pass filter prevented the Cerenkov and fluorescence background light (stem signal) induced in the fiber-optic cable from striking the ruby crystal, which generates unwanted photoluminescence rather than the desired radioluminescence. The relative contributions of the radioluminescence signal and the stem signal were quantified by exposing the ruby detectors to a high-dose-rate brachytherapy source. The photoluminescence signal was quantified by irradiating the fiber-optic cable with the detector volume shielded. Other experiments addressed time-dependent luminescence properties and compared the ISDs to commonly used organic scintillator detectors (BCF-12, BCF-60). When the brachytherapy source dwelled 0.5 cm away from the fiber-optic cable, the unwanted photoluminescence was reduced from > 5% to < 1% of the total signal as long as the ISD incorporated the long-pass filter. The stem signal was suppressed with a band-pass filter and was < 3% as long as the source distance from the scintillator was < 7 cm. Some ruby crystals exhibited time-dependent luminescence properties that altered the ruby signal by > 5% within 10 s from the onset of irradiation and after the source had retracted. The ruby-based ISDs generated signals of up to 20 times that of BCF-12-based detectors. The study presents solutions to unwanted luminescence properties of ruby-based ISDs for high-dose-rate brachytherapy. An optic filter should be sandwiched between the ruby crystal and the fiber-optic cable to suppress the photoluminescence. Furthermore, we recommend avoiding ruby crystals that exhibit significant time-dependent luminescence.
机译:我们测试了红宝石无机闪烁检测器(ISD)在近距离放射治疗中的潜力,并研究了可能会影响其准确性的各种有害发光特性。 ISD由耦合到聚(甲基丙烯酸甲酯)光纤电缆的红宝石晶体和电荷耦合设备相机组成。 ISD还包括一个长通滤波器,该滤波器夹在红宝石晶体和光纤电缆之间。长通滤光片可防止在光纤中感应的切伦科夫和荧光背景光(干信号)撞击红宝石晶体,从而产生有害的光致发光,而不是所需的光致发光。通过将红宝石检测器暴露于高剂量率近距离放射治疗源,可以定量放射线发光信号和茎信号的相对贡献。通过用屏蔽了检测器的体积照射光缆来量化光致发光信号。其他实验解决了随时间变化的发光特性,并将ISD与常用的有机闪烁体检测器(BCF-12,BCF-60)进行了比较。当近距离放射治疗源距光纤电缆的距离为0.5 cm时,只要ISD集成了长通滤波器,多余的光致发光就会从总信号的5%降低到<1%。只要信号源与闪烁体的距离小于7厘米,干信号就可以通过带通滤波器抑制,并且小于3%。一些红宝石晶体显示出随时间变化的发光特性,从照射开始到光源退回后10 s内,红宝石信号的变化> 5%。基于红宝石的ISD生成的信号最多是基于BCF-12的探测器的20倍。该研究提出了用于高剂量率近距离放射治疗的基于红宝石的ISD不需要的发光特性的解决方案。滤光片应夹在红宝石晶体和光缆之间,以抑制光致发光。此外,我们建议避免显示具有明显时间依赖性的红宝石晶体。

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