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Low‐cost flexible thin‐film detector for medical dosimetry applications

机译:用于医疗剂量学应用的低成本柔性薄膜探测器

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摘要

The purpose of this study is to characterize dosimetric properties of thin film photovoltaic sensors as a platform for development of prototype dose verification equipment in radiotherapy. Towards this goal, flexible thin‐film sensors of dose with embedded data acquisition electronics and wireless data transmission are prototyped and tested in kV and MV photon beams. Fundamental dosimetric properties are determined in view of a specific application to dose verification in multiple planes or curved surfaces inside a phantom. Uniqueness of the new thin‐film sensors consists in their mechanical properties, low‐power operation, and low‐cost. They are thinner and more flexible than dosimetric films. In principle, each thin‐film sensor can be fabricated in any size (mm2 – cm2 areas) and shape. Individual sensors can be put together in an array of sensors spreading over large areas and yet being light. Photovoltaic mode of charge collection (of electrons and holes) does not require external electric field applied to the sensor, and this implies simplicity of data acquisition electronics and low power operation. The prototype device use for testing consists of several thin film dose sensors, each of about 1.5cm×5cm area, connected to simple readout electronics. Sensitivity of the sensors is determined per unit area and compared to EPID sensitivity, as well as other standard photodiodes. Each sensor independently measures dose and is based on commercially available flexible thin‐film aSi photodiodes. Readout electronics consists of an ultra low‐power microcontroller, radio frequency transmitter, and a low‐noise amplification circuit implemented on a flexible printed circuit board. Detector output is digitized and transmitted wirelessly to an external host computer where it is integrated and processed. A megavoltage medical linear accelerator (Varian Tx) equipped with kilovoltage online imaging system and a Cobalt source are use to irradiate different thin‐film detector sensors in a Solid Water phantom under various irradiation conditions. Different factors are considered in characterization of the device attributes: energies (80 kVp, 130 kVp, 6 MV, 15 MV), dose rates (different ms × mA, 100–600 MU/min), total doses (0.1 cGy‐500 cGy), depths (0.5 cm–20 cm), irradiation angles with respect to the detector surface (0°‐180°), and IMRT tests (closed MLC, sweeping gap). The detector response to MV radiation is both linear with total dose (~1‐400 cGy) and independent of dose rate (100‐600 Mu/min). The sensitivity per unit area of thin‐film sensors is lower than for aSi flat‐panel detectors, but sufficient to acquire stable and accurate signals during irradiations. The proposed thin‐film photodiode system has properties which make it promising for clinical dosimetry. Due to the mechanical flexibility of each sensor and readout electronics, low‐cost, and wireless data acquisition, it could be considered for quality assurance (e.g., IMRT, mechanical linac QA), as well as real‐time dose monitoring in challenging setup configurations, including large area and 3D detection (multiple planes or curved surfaces).PACS number: 87.56.Fc
机译:这项研究的目的是表征薄膜光伏传感器的剂量特性,以此作为开发放射疗法原型剂量验证设备的平台。为了实现这一目标,在kV和MV光子束中对具有嵌入式数据采集电子设备和无线数据传输功能的柔性薄膜传感器进行了原型设计和测试。基本剂量特性是根据幻像内部多个平面或曲面上剂量验证的特定应用确定的。新型薄膜传感器的独特之处在于其机械性能,低功耗运行和低成本。它们比剂量薄膜更薄,更灵活。原则上,每个薄膜传感器都可以制成任何尺寸(mm 2 – cm 2 区域)和形状。可以将各个传感器组合成一个传感器阵列,这些传感器分布在较大的面积上,而且重量轻。光伏模式的电荷收集(电子和空穴)不需要向传感器施加外部电场,这意味着数据采集电子设备的简单性和低功耗操作。用于测试的原型设备由几个薄膜剂量传感器组成,每个传感器约 1.5 cm × 5 cm 区域,连接到简单的读出电子设备。传感器的灵敏度是按单位面积确定的,并与EPID灵敏度以及其他标准光电二极管进行比较。每个传感器均独立测量剂量,并基于市售的柔性薄膜aSi光电二极管。读出电子设备包括一个超低功耗微控制器,一个射频发射器以及一个在柔性印刷电路板上实现的低噪声放大电路。检测器输出被数字化并无线传输到外部主机,并在此进行集成和处理。配备千伏在线成像系统和钴源的兆伏医用线性加速器(Varian Tx)用于在各种照射条件下以固体水体模照射不同的薄膜探测器传感器。在表征设备属性时考虑了以下因素:能量(80 kVp,130 kVp,6 MV,15 MV),剂量率(不同的ms×mA,100-600 MU / min),总剂量(0.1 cGy-500 cGy ),深度(0.5 cm–20 cm),相对于探测器表面的照射角度(0°-180°)和IMRT测试(闭合的MLC,扫隙)。检测器对MV辐射的响应与总剂量(〜1-400 cGy)呈线性关系,并且与剂量率(100-600 Mu / min)无关。薄膜传感器的单位面积灵敏度低于aSi平板探测器,但足以在辐照期间获取稳定而准确的信号。所提出的薄膜光电二极管系统的特性使其有望用于临床剂量学。由于每个传感器和读出电子设备的机械灵活性,低成本和无线数据采集,可以考虑对其进行质量保证(例如IMRT,机械直线加速器质量保证),以及在具有挑战性的设置配置中进行实时剂量监控,包括大面积和3D检测(多个平面或曲面)。PACS编号:87.56.Fc

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