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Applications of laser-accelerated particle beams for radiation therapy

机译:激光加速粒子束在放射治疗中的应用

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摘要

Proton beams are more advantageous than high-energy photons and electrons for radiation therapy because of their finite penetrating range and the Bragg peak near the end of their range, which have been utilized to achieve better dose conformity to the treatment target allowing for dose escalation and/or hypofractionation to increase local tumor control, reduce normal tissue complications and/or treatment time/cost. Proton therapy employing conventional particle acceleration techniques is expensive because of the large accelerators and treatment gantries that require excessive space and shielding. Compact proton acceleration systems are being sought to improve the cost-effectiveness for proton therapy. This paper reviews the physics principles of laser-proton acceleration and the development of prototype laserproton therapy systems as a solution for widespread applications of advanced proton therapy. The system design, the major components and the special delivery techniques for energy and intensity modulation are discussed in detail for laser-accelerated proton therapy
机译:质子束比起高能光子和电子在放射治疗中更具优势,因为它们的有限穿透范围和接近其范围末端的布拉格峰已被用来实现与治疗目标的更好剂量一致性,从而使剂量递增和/或进行超分割以增加局部肿瘤控制,减少正常组织并发症和/或治疗时间/成本。由于传统的加速器和治疗架需要大量空间和遮挡,因此采用常规粒子加速技术的质子治疗非常昂贵。人们正在寻求紧凑的质子加速系统以提高质子治疗的成本效益。本文回顾了激光质子加速的物理原理以及原型激光质子治疗系统的发展,作为先进质子治疗广泛应用的解决方案。详细讨论了激光加速质子治疗的系统设计,主要组件和特殊的能量和强度调制传输技术。

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