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Development of Laser Accelerated Proton Beams for Radiation Therapy

机译:激光加速质子束辐射治疗技术的发展

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Recent advances in laser technology have made proton (ion) acceleration possible using laser induced plasmas. In this presentation we will review the theoretical and experimental results of laser-proton acceleration for radiotherapy applications. We will report on our work progress in the development of a laser-proton therapy system at Fox Chase Cancer Center. The new proton therapy system is designed as a compact and cost-effective alternative to conventional accelerator based proton systems capable of delivering intensity-modulated proton therapy (IMPT). The specific aims of our research are: (1) target design for laser-proton acceleration, (2) system design for particle/energy selection and beam colli-mation, and (3) dosimetric studies on the use of laser-accelerated protons for cancer therapy. We have established a 150 TW laser system for preliminary experimental studies. We also patented a compact particle selection and beam collimat-ing system for IMPT beam delivery and a new gantry design to make the whole system compact and easy to operate with adequate shielding considerations. Our Monte Carlo results show that IMPT using laser protons provided superior target coverage and much reduced critical structure dose and integral dose. IMPT is more dosimetrically advantageous than photon IMRT or conventional proton beams.
机译:激光技术的最新进展已使使用激光诱导的等离子体实现质子(离子)加速成为可能。在本演示中,我们将回顾用于放射治疗应用的激光质子加速的理论和实验结果。我们将报告福克斯蔡斯癌症中心在开发激光质子治疗系统方面的工作进展。新的质子治疗系统被设计为一种紧凑且具有成本效益的替代方案,可替代传统的基于加速器的质子系统,能够提供强度调制质子治疗(IMPT)。我们研究的具体目标是:(1)激光质子加速的目标设计;(2)粒子/能量选择和束准直的系统设计;(3)激光加速质子用于激光的质子学研究癌症治疗。我们已经建立了用于初步实验研究的150 TW激光系统。我们还获得了用于IMPT光束传输的紧凑型颗粒选择和光束准直系统的专利,以及新的龙门架设计,使整个系统紧凑且易于操作,并考虑到了充分的屏蔽因素。我们的蒙特卡洛结果表明,使用激光质子的IMPT可提供出色的目标覆盖率,并大大降低了关键结构剂量和积分剂量。 IMPT在剂量学上比光子IMRT或常规质子束更具优势。

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