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Microbeam radiation therapy at a laser-based compact synchrotron x-ray source

机译:基于激光的紧凑型同步加速器X射线源的微束放射治疗

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Summary form only given. X-ray microbeam radiation therapy (MRT) is a preclinical approach for tumor treatment based on spatial dose redistribution. In-vitro and in-vivo studies suggest higher tumor control and less normal tissue complications compared to conventional radiotherapy [1]. Due to high requirements on dose rate and x-ray beam collimation, most of the research on MRT has been performed at large-scale synchrotron facilities. We conducted first successful in-vitro experiments at a laser-based Compact Light Source (CLS). This unique system is based on inverse Compton scattering of infrared laser photons, enhanced with a high-finesse bowtie-cavity, with relativistic electrons of 20-45 MeV [2]. Here, the magnetic field created by undulators at standard synchrotrons is replaced by the electro-magnetic field of the laser photons. Due to the significantly lower period of the laser undulator, these low electron energies are sufficient to achieve quasi-monochromatic x-rays of 15-35 keV with a source size of about 45×45 μm
机译:仅提供摘要表格。 X射线微束放射治疗(MRT)是基于空间剂量重新分布的肿瘤治疗的临床前方法。体外和体内研究表明,与常规放疗相比,肿瘤控制更高,正常组织并发症更少[1]。由于对剂量率和X射线束准直的要求很高,因此大多数有关MRT的研究都是在大型同步加速器设施上进行的。我们在基于激光的紧凑型光源(CLS)上进行了首次成功的体外实验。这个独特的系统基于红外激光光子的康普顿逆散射,并通过高精细的领结型腔增强,相对论电子为20-45 MeV [2]。在这里,由波动器在标准同步加速器处产生的磁场被激光光子的电磁场代替。由于激光波荡器的周期明显缩短,这些低电子能量足以实现15-35 keV的准单色X射线,其光源尺寸约为45×45μm

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