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Fabrication of high aspect-ratio polymer microstructures for large-area electronic portal x-ray imagers

机译:大面积电子门X射线成像仪高纵横比聚合物微结构的制造

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摘要

Megavoltage x-ray imaging performed during radiotherapy is the method of choice for geometric verification of patient localization and dose delivery. Presently, such imaging is increasingly performed using electronic portal imaging devices (EPIDs) based on indirect detection active matrix flat panel imagers (AMFPIs). These devices use a scintillating phosphor screen in order to convert incident x-rays into optical photons, which are then detected by the underlying active matrix photodiode array. The use of a continuous phosphor introduces a trade-off between x-ray quantum efficiency and spatial resolution, which limits current devices to use only ∼2% of the incident x-rays. This trade-off can be circumvented by “segmented phosphor screens”, comprising a two-dimensional matrix of optically-isolated cell structures filled with scintillating phosphor. In this work we describe the fabrication of millimeter-thick segmented phosphor screens using the MEMS (micro-electro-mechanical-system) polymer SU-8. This method is capable of being extended to large-area substrates.
机译:放射治疗期间进行的兆伏X射线成像是对患者定位和剂量输送进行几何验证的选择方法。当前,越来越多地使用基于间接检测有源矩阵平板成像器(AMFPI)的电子门禁成像设备(EPID)来执行这种成像。这些设备使用闪烁的磷光屏,以便将入射的X射线转换为光学光子,然后由下面的有源矩阵光电二极管阵列检测到。连续荧光粉的使用在X射线量子效率和空间分辨率之间进行了权衡,这限制了当前设备仅使用约2%的入射X射线。可以通过“分段的荧光屏”来避免这种折衷,该分段的荧光屏包括由闪烁的荧光粉填充的光隔离单元结构的二维矩阵。在这项工作中,我们描述了使用MEMS(微机电系统)聚合物SU-8制造毫米厚的分段荧光屏的过程。该方法能够扩展到大面积基板。

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