Schauer Petr, Lalinský Ondřej, Kučera Miroslav
Institute of Scientific Instruments of the CAS, Brno, Czech Republic.
Charles University, Faculty of Mathematics and Physics, Prague, Czech Republic.
Microsc Res Tech. 2019 Mar;82(3):272-282. doi: 10.1002/jemt.23169. Epub 2018 Dec 27.
The performance of a scintillation electron detector for a scanning electron microscope and/or a scanning transmission electron microscope (S(T)EM) based on new epitaxial garnet film scintillators was explored. The LuGAGG:Ce and LuGAGG:Ce,Mg film scintillators with chemical formula (Ce Lu Gd ) Mg (Ga Al )O were prepared and their cathodoluminescence (CL) and optical properties were studied and compared with the properties of current standard bulk single crystal YAG:Ce and YAP:Ce scintillators. More specifically, CL decay characteristics, CL emission spectra, CL intensities, optical absorption coefficients, and the refractive indices of the mentioned scintillators were measured. Furthermore, electron interaction volumes with absorbed energy distributions, photomultiplier (PMT) photocathode matchings, modulation transfer functions (MTF), and the photon transport efficiencies of scintillation detectors with the mentioned scintillators were calculated. A CL decay time for the LuGAGG:Ce,Mg film scintillator as low as 28 ns with an afterglow of only 0.02% at 1 μs after the e-beam excitation was observed. As determined from calculated MTFs, the scintillation detectors with the new film scintillators lose contrast transfer ability above 0.6 lp/pixel, while the currently commonly used YAG:Ce single crystal scintillators already do so above 0.1 lp/pixel. It was also calculated that the new studied film scintillators have an 8% higher photon transfer efficiency, even for a simple disk shape compared with the standard bulk single crystal YAG:Ce scintillator. The studied LuGAGG:Ce,Mg epitaxial garnet film scintillators were evaluated as prospective fast scintillators for electron detectors, not only in S(T)EM but also in other e-beam devices.
探索了一种基于新型外延石榴石薄膜闪烁体的扫描电子显微镜和/或扫描透射电子显微镜(S(T)EM)用闪烁电子探测器的性能。制备了化学式为(Ce Lu Gd ) Mg (Ga Al )O的LuGAGG:Ce和LuGAGG:Ce,Mg薄膜闪烁体,并研究了它们的阴极发光(CL)和光学性质,并与当前标准块状单晶YAG:Ce和YAP:Ce闪烁体的性质进行了比较。更具体地说,测量了上述闪烁体的CL衰减特性、CL发射光谱、CL强度、光吸收系数和折射率。此外,还计算了具有吸收能量分布的电子相互作用体积、光电倍增管(PMT)光电阴极匹配、调制传递函数(MTF)以及使用上述闪烁体的闪烁探测器的光子传输效率。观察到LuGAGG:Ce,Mg薄膜闪烁体的CL衰减时间低至28 ns,在电子束激发后1 μs时的余辉仅为0.02%。根据计算出的MTF确定,使用新型薄膜闪烁体的闪烁探测器在高于0.6 lp/像素时失去对比度传递能力,而目前常用的YAG:Ce单晶闪烁体在高于0.1 lp/像素时就已如此。还计算得出,即使与标准块状单晶YAG:Ce闪烁体相比为简单的圆盘形状,新研究的薄膜闪烁体的光子传输效率也高出8%。所研究的LuGAGG:Ce,Mg外延石榴石薄膜闪烁体被评估为电子探测器的潜在快速闪烁体,不仅适用于S(T)EM,也适用于其他电子束设备。