用于实时FLASH放射治疗的闪烁体光束监测器。

ArXiv Pub Date : 2024-03-08
Daniel S Levin, Peter S Friedman, Claudio Ferretti, Nicholas Ristow, Monica Tecchio, Dale W Litzenberg, Vladimir Bashkirov, Reinhard Schulte
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引用次数: 0

摘要

背景:FLASH放射治疗(RT)是一种潜在的新型癌症放射治疗技术,其整个治疗剂量在约0.1s内递送,剂量率约为传统RT的1000倍。为了安全地进行临床试验,需要精确快速的波束监测,以产生超容波束中断。目的:正在开发一种FLASH光束闪烁体监测器(FBSM),部分基于两种新型专有闪烁体材料,其功能是传统RT探测器技术无法同时提供的:1)大面积覆盖;2) 低质量轮廓;3) 在宽动态范围内的线性响应;4) 辐射耐受性;5) 实时分析符合IEC标准的快速波束中断信号;6) 真正的二维光束成像,具有出色的空间分辨率。本文介绍了设计概念,并报告了原型装置的结果。方法:FBSM使用两种专有的低质量(<1 mm WE)、不吸湿、耐辐射的闪烁体材料(分别指定为PM和HM:聚合物和混合材料),可通过高帧率机器视觉相机观看。使用反射镜的折叠光学器件可以实现约10厘米的薄监视器轮廓。闪烁体的选择取决于特定的光束类型和传输配置。目前正在开发的基于FPGA的数据采集系统在适合FLASH RT束模式的时间尺度上生成实时分析和束中断信号:脉冲电子为100-1000 Hz,准连续扫描质子笔束为10-20 kHz。制造了两个原型监测设备,并在各种辐射束中进行了测试,这些辐射束包括重离子、nA电流下的低能质子、每脉冲FLASH水平的剂量电子束,以及在医院放射治疗诊所中使用电子束进行了测试。结果:本报告中给出的结果包括图像质量、响应线性、辐射硬度、空间分辨率和实时数据处理。发现这两种闪烁体材料都具有很高的抗辐射损伤性。PM和HM闪烁体分别在9kGy和20kGy的累积剂量后没有表现出可测量的信号下降。HM在234 Gy/s的高FLASH剂量率下连续暴露15分钟产生的212 kGy累积剂量后显示出小的-0.02%/kGy信号下降。这些测试确定了FBSM相对于束流、每脉冲剂量和材料厚度的线性响应。与商用Gafchromic薄膜的比较表明,FBSM产生了高分辨率的2D光束图像,并且可以再现几乎相同的光束轮廓,包括主光束尾。光束轮廓的双高斯拟合表明,FBSM和Gafchromic膜产生相同的拟合参数,在其平均值的1.4%以内。在20kfps或50μs/帧时,光束位置、光束形状和光束剂量的实时计算和分析耗时<1μs。结论:FBSM设计用于在不显著降低光束质量的情况下,在大有源区域内提供实时光束轮廓监测。使用连续离子束和脉冲电子束,原型装置已在单粒子电流高达FLASH水平剂量率的粒子束中分级。使用我们的新型闪烁体,已经证明了从单个粒子到10nA电流的电流的光束轮廓。辐射损伤是最小的,即使在FLASH条件下,也需要在单个点中累积≥50kGy的暴露,以导致信号输出减少1%。空间分辨率与辐射变色胶片相当。对于连续质子束和100-1000 Hz的脉冲电子束,固件正在实现10-20 kHz帧速率的实时数据处理,耗时<1μs。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Prototype Scintillator Real-Time Beam Monitor for Ultra-high Dose Rate Radiotherapy.

A Prototype Scintillator Real-Time Beam Monitor for Ultra-high Dose Rate Radiotherapy.

A Prototype Scintillator Real-Time Beam Monitor for Ultra-high Dose Rate Radiotherapy.

A Prototype Scintillator Real-Time Beam Monitor for Ultra-high Dose Rate Radiotherapy.

Background: FLASH Radiotherapy (RT) is an emergent cancer radiotherapy modality where an entire therapeutic dose is delivered at more than 1000 times higher dose rate than conventional RT. For clinical trials to be conducted safely, a precise and fast beam monitor that can generate out-of-tolerance beam interrupts is required. This paper describes the overall concept and provides results from a prototype ultra-fast, scintillator-based beam monitor for both proton and electron beam FLASH applications.

Purpose: A FLASH Beam Scintillator Monitor (FBSM) is being developed that employs a novel proprietary scintillator material. The FBSM has capabilities that conventional RT detector technologies are unable to simultaneously provide: 1) large area coverage; 2) a low mass profile; 3) a linear response over a broad dynamic range; 4) radiation hardness; 5) real-time analysis to provide an IEC-compliant fast beam-interrupt signal based on true two-dimensional beam imaging, radiation do-simetry and excellent spatial resolution.

Methods: The FBSM uses a proprietary low mass, less than 0.5 mm water equivalent, non-hygroscopic, radiation tolerant scintillator material (designated HM: hybrid material) that is viewed by high frame rate CMOS cameras. Folded optics using mirrors enable a thin monitor profile of ~10 cm. A field programmable gate array (FPGA) data acquisition system (DAQ) generates real-time analysis on a time scale appropriate to the FLASH RT beam modality: 100-1000 Hz for pulsed electrons and 10-20 kHz for quasi-continuous scanning proton pencil beams. An ion beam monitor served as the initial development platform for this work and was tested in low energy heavy-ion beams (86Kr+26 and protons). A prototype FBSM was fabricated and then tested in various radiation beams that included FLASH level dose per pulse electron beams, and a hospital radiotherapy clinic with electron beams.

Results: Results presented in this report include image quality, response linearity, radiation hardness, spatial resolution, and real-time data processing. The HM scintillator was found to be highly radiation damage resistant. It exhibited a small 0.025%/kGy signal decrease from a 216 kGy cumulative dose resulting from continuous exposure for 15 minutes at a FLASH compatible dose rate of 237 Gy/s. Measurements of the signal amplitude vs beam fluence demonstrate linear response of the FBSM at FLASH compatible dose rates of > 40 Gy/s. Comparison with commercial Gafchromic film indicates that the FBSM produces a high resolution 2D beam image and can reproduce a nearly identical beam profile, including primary beam tails. The spatial resolution was measured at 35-40 μm. Tests of the firmware beta version show successful operation at 20,000 Hz frame rate or 50 μs/frame, where the real-time analysis of the beam parameters is achieved in less than 1 μs.

Conclusions: The FBSM is designed to provide real-time beam profile monitoring over a large active area without significantly degrading the beam quality. A prototype device has been staged in particle beams at currents of single particles up to FLASH level dose rates, using both continuous ion beams and pulsed electron beams. Using a novel scintillator, beam profiling has been demonstrated for currents extending from single particles to 10 nA currents. Radiation damage is minimal and even under FLASH conditions would require ≥ 50 kGy of accumulated exposure in a single spot to result in a 1% decrease in signal output. Beam imaging is comparable to radiochromic films, and provides immediate images without hours of processing. Real-time data processing, taking less than 50 μs (combined data transfer and analysis times), has been implemented in firmware for 20 kHz frame rates for continuous proton beams.

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