Koch-Mehrin Kjell A L, Bugby Sarah L, Lees John E, Veale Matthew C, Wilson Matthew D
Space Research Centre, Department of Physics & Astronomy, University of Leicester, Leicester LE1 7RH, UK.
Centre for Imaging Science, Department of Physics, Loughborough University, Loughborough LE11 3TU, UK.
Sensors (Basel). 2021 May 8;21(9):3260. doi: 10.3390/s21093260.
Cadmium zinc telluride (CdZnTe) detectors are known to suffer from polarization effects under high photon flux due to poor hole transport in the crystal material. This has led to the development of a high-flux capable CdZnTe material (HF-CdZnTe). Detectors with the HF-CdZnTe material have shown promising results at mitigating the onset of the polarization phenomenon, likely linked to improved crystal quality and hole carrier transport. Better hole transport will have an impact on charge collection, particularly in pixelated detector designs and thick sensors (>1 mm). In this paper, the presence of charge sharing and the magnitude of charge loss were calculated for a 2 mm thick pixelated HF-CdZnTe detector with 250 μm pixel pitch and 25 μm pixel gaps, bonded to the STFC HEXITEC ASIC. Results are compared with a CdTe detector as a reference point and supported with simulations from a Monte-Carlo detector model. Charge sharing events showed minimal charge loss in the HF-CdZnTe, resulting in a spectral resolution of 1.63 ± 0.08 keV Full Width at Half Maximum (FWHM) for bipixel charge sharing events at 59.5 keV. Depth of interaction effects were shown to influence charge loss in shared events. The performance is discussed in relation to the improved hole transport of HF-CdZnTe and comparison with simulated results provided evidence of a uniform electric field.
碲锌镉(CdZnTe)探测器因晶体材料中空穴传输不佳,在高光子通量下会出现极化效应。这促使了一种高通量能力的碲锌镉材料(HF-CdZnTe)的开发。采用HF-CdZnTe材料的探测器在减轻极化现象的发生方面已显示出有前景的结果,这可能与晶体质量和空穴载流子传输的改善有关。更好的空穴传输将对电荷收集产生影响,特别是在像素化探测器设计和厚传感器(>1mm)中。在本文中,针对一个2mm厚、像素间距为250μm且像素间隙为25μm、与STFC HEXITEC ASIC键合的像素化HF-CdZnTe探测器,计算了电荷共享的存在情况和电荷损失的大小。结果与作为参考点的碲化镉(CdTe)探测器进行了比较,并得到了蒙特卡罗探测器模型模拟的支持。电荷共享事件在HF-CdZnTe中显示出最小的电荷损失,在59.5keV下,双像素电荷共享事件的半高宽(FWHM)光谱分辨率为1.63±0.08keV。相互作用深度效应被证明会影响共享事件中的电荷损失。结合HF-CdZnTe改善的空穴传输对性能进行了讨论,与模拟结果的比较提供了均匀电场的证据。