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Dosimetry of laser-accelerated electron beams used for in vitro cell irradiation experiments (Conference Paper)

机译:用于体外细胞辐照实验的激光加速电子束剂量学(会议论文)

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摘要

The dosimetric characterization of laser-accelerated electrons applied for the worldwide first systematic radiobiological in vitro cell irradiation will be presented. The laser-accelerated electron beam at the JeTi laser system has been optimized, monitored and controlled in terms of dose homogeneity, stability and absolute dose delivery. A combination of different dosimetric components were used to provide both an online beam as well as dose monitoring and a precise absolute dosimetry. In detail, the electron beam was controlled and monitored by means of an ionization chamber and an in-house produced Faraday cup for a defined delivery of the prescribed dose. Moreover, the precise absolute dose delivered to each cell sample was determined by an radiochromic EBT film positioned in front of the cell sample. Furthermore, the energy spectrum of the laser-accelerated electron beam was determined. As presented in a previous work of the authors, also for laser-accelerated protons a precise dosimetric characterization was performed that enabled initial radiobiological cell irradiation experiments with laser-accelerated protons. Therefore, a precise dosimetric characterization, optimization and control of laser-accelerated and therefore ultra-short pulsed, intense particle beams for both electrons and protons is possible, allowing radiobiological experiments and meeting all necessary requirements like homogeneity, stability and precise dose delivery. In order to fulfill the much higher dosimetric requirements for clinical application, several improvements concerning, i.e., particle energy and spectral shaping as well as patient safety are necessary.
机译:将介绍用于世界上第一个系统性放射生物学体外细胞辐照的激光加速电子的剂量学表征。 JeTi激光系统上的激光加速电子束已在剂量均匀性,稳定性和绝对剂量输送方面进行了优化,监视和控制。结合使用了不同的剂量学组件,以提供在线光束以及剂量监控和精确的绝对剂量学。详细地说,借助于电离室和内部生产的法拉第杯对电子束进行控制和监视,以实现规定剂量的确定输送。此外,传递给每个细胞样品的精确绝对剂量由位于细胞样品前面的放射色EBT膜确定。此外,确定了激光加速的电子束的能谱。如作者先前的工作所述,对于激光加速的质子,也进行了精确的剂量学表征,该特性使得能够使用激光加速的质子进行初始放射生物学细胞辐照实验。因此,可以对电子和质子进行激光加速并因此超短脉冲,强脉冲束进行精确的剂量学表征,优化和控制,从而进行放射生物学实验并满足所有必要的要求,例如均匀性,稳定性和精确的剂量输送。为了满足临床应用中更高的剂量学要求,必须进行涉及粒子能量和光谱整形以及患者安全性的若干改进。

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