用于质子治疗中 LET 监测的微剂量测定。开发用于临床应用的工程微型 TEPC:初步结果

IF 1.6 3区 物理与天体物理 Q2 NUCLEAR SCIENCE & TECHNOLOGY
A. Bianchi , A. Selva , F. Pasquato , M. Rossignoli , A. Minarello , A. Fazzi , V. Conte
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引用次数: 0

摘要

目前正在研究质子治疗中的创新治疗计划系统(TPS),该系统基于随深度变化的辐射质量,而传统的相对生物效应(RBE)固定为 1.1。需要用实验方法来验证计划与实际放射质量之间的一致性。微观模拟法研究微米级和亚微米级能量沉积过程的随机性,众所周知,这与电离辐射场的生物效应有关。因此,科学界认为它是监测强子治疗束辐射质量的有用工具,因为治疗效果会随穿透病人的深度而变化。要对临床光束进行微剂量测定,需要使用探测器,而且这些探测器必须满足特定要求,才能作为质量保证(QA)仪器进入临床实践。为此,意大利国家核物理研究所莱格纳罗国家实验室(LNL-INFN)开展了一个技术转让项目,最终目标是开发出用于临床应用的工程微型组织等效比例计数器(mini-TEPCs)。这项工作介绍了新探测器的特性以及在中子和质子场中获得的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microdosimetric measurements for LET monitoring in proton therapy. The development of engineered mini-TEPCs for clinical applications: First results

Innovative Treatment Planning Systems (TPS) in proton therapy based on a variable radiation quality with depth with respect to the conventional one with a fixed Relative Biological Effectiveness (RBE) of 1.1 are under study. Experimental methods are needed to verify the consistency between what is planned and what is delivered in terms of radiation quality. Microdosimetry studies the stochastics of the energy deposition process at micrometric and sub-micrometric level which is known to be related to the biological effectiveness of ionising radiation fields. For this reason, it is recognised by the scientific community that it is a useful tool to monitor the radiation quality of hadron therapy beams where the effectiveness varies with the penetration depth in patients. Detectors are needed to perform a microdosimetric characterization of a clinical beam and they need to satisfy specific requirements to enter the clinical practice as instruments for the Quality Assurance (QA). With this aim, at the Legnaro National Laboratories of the Italian National Institute for Nuclear Physics (LNL-INFN) a technological transfer project was carried out with the final goal of developing engineered miniaturized Tissue Equivalent Proportional Counters (mini-TEPCs) for clinical applications. This work presents the characterization performed on the new detectors and the results obtained in neutron and proton fields.

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来源期刊
Radiation Measurements
Radiation Measurements 工程技术-核科学技术
CiteScore
4.10
自引率
20.00%
发文量
116
审稿时长
48 days
期刊介绍: The journal seeks to publish papers that present advances in the following areas: spontaneous and stimulated luminescence (including scintillating materials, thermoluminescence, and optically stimulated luminescence); electron spin resonance of natural and synthetic materials; the physics, design and performance of radiation measurements (including computational modelling such as electronic transport simulations); the novel basic aspects of radiation measurement in medical physics. Studies of energy-transfer phenomena, track physics and microdosimetry are also of interest to the journal. Applications relevant to the journal, particularly where they present novel detection techniques, novel analytical approaches or novel materials, include: personal dosimetry (including dosimetric quantities, active/electronic and passive monitoring techniques for photon, neutron and charged-particle exposures); environmental dosimetry (including methodological advances and predictive models related to radon, but generally excluding local survey results of radon where the main aim is to establish the radiation risk to populations); cosmic and high-energy radiation measurements (including dosimetry, space radiation effects, and single event upsets); dosimetry-based archaeological and Quaternary dating; dosimetry-based approaches to thermochronometry; accident and retrospective dosimetry (including activation detectors), and dosimetry and measurements related to medical applications.
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