Therriault-Proulx F, Wen Z, Ibbott G, Beddar S
Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, 1515 Holcombe Blvd., Unit 1420, Houston, TX, USA.
Radiat Meas. 2018 Sep;116:10-13. doi: 10.1016/j.radmeas.2018.06.011. Epub 2018 Jun 9.
To characterize the response of plastic scintillation detectors (PSDs) to high-energy photon radiation as a function of magnetic field strength.
PSDs were placed inside a plastic phantom held at the center point between 2 magnets and irradiated using a 6-MV photon beam from a linear accelerator. The magnetic field was varied from 0 T to 1.5 T by 0.3-T increments. The light emission and stem-effect-corrected response as a function of magnetic field strength were obtained for both a commercial PSD (Exradin W1, Standard Imaging) and an in-house hyperspectral PSD. Spectral signatures were obtained for the in-house PSD, and light emission from a bare fiber was also measured.
Light emission increased as magnetic field strength increased for all detectors tested. The tested PSDs exhibited an increase in light intensity of 10% to 20%, mostly owing to the increase in Cerenkov light produced within and transmitted along the optical fiber. When corrected for stem effects, the increase in PSD response went down to 2.4% for both detectors. This most likely represents the change in the inherent dose deposition within the phantom.
PSDs with a suitable stem-effect removal approach were less dependent on magnetic field strength and had better water equivalence than did ion chambers tested in previous studies. PSDs therefore show great promise for use in both quality assurance and dosimetry applications in a magnetic field environment.
表征塑料闪烁探测器(PSD)对高能光子辐射的响应与磁场强度的函数关系。
将PSD放置在位于两个磁体之间中心点的塑料模体内部,并使用直线加速器产生的6兆伏光子束进行照射。磁场强度以0.3特斯拉的增量从0特斯拉变化到1.5特斯拉。对于商用PSD(Exradin W1,标准成像公司)和内部高光谱PSD,均获得了作为磁场强度函数的发光和经茎效应校正的响应。获取了内部PSD的光谱特征,还测量了裸光纤的发光情况。
对于所有测试的探测器,发光随磁场强度的增加而增加。测试的PSD的光强度增加了10%至20%,这主要归因于在光纤内部产生并沿光纤传输的切伦科夫光的增加。在对茎效应进行校正后,两个探测器的PSD响应增加量降至2.4%。这很可能代表了模体内固有剂量沉积的变化。
采用合适的茎效应消除方法的PSD对磁场强度的依赖性较小,并且比先前研究中测试的电离室具有更好的水等效性。因此,PSD在磁场环境中的质量保证和剂量测定应用中显示出巨大的潜力。