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Phenol compounds as new materials for Electron Paramagnetic Resonance dosimetry in clinical photon and electron beams,

机译:酚化合物作为临床光子和电子束中电子顺磁共振剂量测定的新材料,

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摘要

In the last decades several research laboratories have shown an increasing interest aimed at extending the applicability of Electron Paramagnetic Resonance (EPR) dosimetry to radiotherapy with different types of radiation beams. EPR is a spectroscopic method for investigating the structure and dynamics of such paramagnetic species. Free radicals are known to be produced when a compound is irradiated with ionizing radiations. The concentration of radiation-induced free radicals is proportional to the energy released inside in the medium and this allows for dosimetric measurements through EPR technique. The use of alanine as a dosimetric material gave the possibility to apply EPR spectroscopy for high-dose standardization and dose control in radiation processing (Marrale 2016). udThe EPR dosimetric method has many advantages such as simple and rapid dose evaluation, the readout procedure is non-destructive, linear response of many organic and inorganic compounds. EPR detectors show a behavior that suggest possible applications for various kinds of beams used for radiation therapy. Nowadays, the most widely used organic compound as a dosimeter is the alanine. However, many researches are in progress with the aim at improving sensitivity of EPR dosimetry for doses much smaller than 1 Gy. More sensitive materials than alanine are needed to make the EPR dosimeter competitive with other dosimetry systems.udOur research group has started an investigation of the EPR response of some phenols compounds for possible EPR dosimetric applications suitable features, such as high efficiency of radiation-matter energy transfer and radical stability at room temperature.udPhenols are compounds possessing a benzene ring attached to a OH group. After irradiation the final product is a stable phenoxy radical. The stability of such radical can be improved by adding other alkyl chains which can be attached to the benzene ring. udThe phenol octadecyl-3-(3,5-di-tert.butyl-4-hydroxyphenyl)-propionate gave interesting results. Moreover, its high molecular weight, the low volatility and the compatibility with the dosimeter binding material (wax) are advantages with respect to lower molecular weight phenols.udIn this work we report the EPR investigation of phenols exposed to clinical photon and electron beams (Gallo, 2016).udThe dosimetric features of these EPR dosimeters (dependence on microwave power and modulation amplitude, their response after gamma and electron irradiations, dependence on beam type and energy, the detection limits for both beam typologies, signal stability after irradiation) were investigated and the results are reported.
机译:在过去的几十年中,几个研究实验室已经显示出越来越大的兴趣,目的是将电子顺磁共振(EPR)剂量学的适用性扩展到使用不同类型的辐射束进行放射治疗。 EPR是用于研究此类顺磁性物质的结构和动力学的光谱方法。已知当化合物被电离辐射照射时会产生自由基。辐射诱导的自由基的浓度与介质内部释放的能量成正比,因此可以通过EPR技术进行剂量学测量。丙氨酸作为剂量学材料的使用使EPR光谱学可用于放射处理中的高剂量标准化和剂量控制(Marrale 2016)。 EPR剂量学方法具有许多优点,例如简单,快速的剂量评估,读出过程无损,许多有机和无机化合物具有线性响应。 EPR检测器显示出一种行为,暗示了可能用于放射治疗的各种光束的应用。如今,作为剂量计使用最广泛的有机化合物是丙氨酸。但是,许多研究正在进行中,目的是提高EPR剂量法对小于1 Gy的剂量的敏感性。为了使EPR剂量计能够与其他剂量测定系统竞争,需要比丙氨酸更敏感的材料。 ud我们的研究小组已开始研究某些酚类化合物的EPR响应,以用于可能的EPR剂量测定应用,并具有合适的功能,例如辐射物质的高效性。在室温下能量转移和自由基稳定性。ud酚是具有与OH基相连的苯环的化合物。辐照后,最终产物是稳定的苯氧基。这种自由基的稳定性可以通过添加可以连接到苯环上的其他烷基链来改善。 ud苯酚十八烷基-3-(3,5-二叔丁基-4-羟基苯基)丙酸酯给出了有趣的结果。此外,相对于较低分子量的酚,它的高分子量,低​​挥发性和与剂量计结合材料(蜡)的相容性是优势。 ud在这项工作中,我们报告了暴露于临床光子和电子束的酚的EPR研究( Gallo,2016)。 ud这些EPR剂量计的剂量学特征(取决于微波功率和调制幅度,伽玛和电子辐照后的响应,取决于束类型和能量,两种束类型的检测极限,辐照后的信号稳定性)进行了调查并报告了结果。

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