Moses W W, Janecek M, Spurrier M A, Szupryczynski P, Choong W-S, Melcher C L, Andreaco M
Lawrence Berkeley National Laboratory, Berkeley, CA 94720 USA (telephone: ++1-510-486-4432,
IEEE Trans Nucl Sci. 2010 Jun 1;57(3):1570-1576. doi: 10.1109/TNS.2010.2047266.
We have explored methods for optimizing the timing resolution of an LSO-based detector module for a single-ring, "demonstration" time-of-flight PET camera. By maximizing the area that couples the scintillator to the PMT and minimizing the average path length that the scintillation photons travel, a single detector timing resolution of 218 ps fwhm is measured, which is considerably better than the ~385 ps fwhm obtained by commercial LSO or LYSO TOF detector modules. We explored different surface treatments (saw-cut, mechanically polished, and chemically etched) and reflector materials (Teflon tape, ESR, Lumirror, Melinex, white epoxy, and white paint), and found that for our geometry, a chemically etched surface had 5% better timing resolution than the saw-cut or mechanically polished surfaces, and while there was little dependence on the timing resolution between the various reflectors, white paint and white epoxy were a few percent better. Adding co-dopants to LSO shortened the decay time from 40 ns to ~30 ns but maintained the same or higher total light output. This increased the initial photoelectron rate and so improved the timing resolution by 15%. Using photomultiplier tubes with higher quantum efficiency (blue sensitivity index of 13.5 rather than 12) improved the timing resolution by an additional 5%. By choosing the optimum surface treatment (chemically etched), reflector (white paint), LSO composition (co-doped), and PMT (13.5 blue sensitivity index), the coincidence timing resolution of our detector module was reduced from 309 ps to 220 ps fwhm.
我们探索了优化基于LSO的探测器模块时间分辨率的方法,该探测器模块用于单环“演示”型飞行时间PET相机。通过最大化闪烁体与光电倍增管耦合的面积,并最小化闪烁光子传播的平均路径长度,测得单个探测器的时间分辨率为218 ps半高宽,这比商用LSO或LYSO飞行时间探测器模块获得的约385 ps半高宽要好得多。我们研究了不同的表面处理(锯切、机械抛光和化学蚀刻)和反射器材料(特氟龙胶带、ESR、聚酯薄膜镜、麦拉纸、白色环氧树脂和白色油漆),发现对于我们的几何结构,化学蚀刻表面的时间分辨率比锯切或机械抛光表面好5%,虽然各种反射器之间对时间分辨率的依赖性很小,但白色油漆和白色环氧树脂要好几个百分点。向LSO中添加共掺杂剂可将衰减时间从40 ns缩短至约30 ns,但保持相同或更高的总光输出。这增加了初始光电子速率,从而将时间分辨率提高了15%。使用具有更高量子效率(蓝色灵敏度指数为13.5而非12)的光电倍增管可将时间分辨率再提高5%。通过选择最佳的表面处理(化学蚀刻)、反射器(白色油漆)、LSO成分(共掺杂)和光电倍增管(蓝色灵敏度指数为13.5),我们探测器模块的符合时间分辨率从309 ps降至220 ps半高宽。