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Characterization of large volume HPGe detectors. Part Ⅱ: Experimental results

机译:大容量HPGe检测器的表征。第二部分:实验结果

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Measurements on a 12-fold segmented, n-type, large volume, irregular shaped HPGe detector were performed in order to determine the parameters of anisotropic mobility for electrons and holes as charge carriers created by γ-ray interactions. To characterize the electron mobility the complete outer detector surface was scanned in small steps employing photopeak interactions at 60 keV. A precise measurement of the hole drift anisotropy was performed with 356 keV γ-rays. The drift velocity anisotropy and crystal geometry cause considerable rise time differences in pulse shapes depending on the position of the spatial charge carrier creation. Pulse shapes of direct and transient signals are reproduced by weighting potential calculations with high precision. The measured angular dependence of rise times is caused by the anisotropic mobility, crystal geometry, changing field strength and space charge effects. Preamplified signals were processed employing digital spectroscopy electronics. Response functions, crosstalk contributions and averaging procedures were taken into account implying novel methods due to the segmentation of the Ge-crystal and digital signal processing electronics.
机译:为了确定电子和空穴作为由γ射线相互作用产生的电荷载流子的各向异性迁移率的参数,对12倍分段,n型,大体积,不规则形状的HPGe检测器进行了测量。为了表征电子迁移率,使用60 keV的光峰相互作用,分小步扫描整个外部探测器表面。用356 keVγ射线精确测量了空穴漂移各向异性。漂移速度的各向异性和晶体的几何形状会导致脉冲形状中明显的上升时间差异,具体取决于空间电荷载流子产生的位置。直接和瞬态信号的脉冲形状通过高精度的加权电位计算得以再现。所测量的上升时间的角度依赖性是由各向异性迁移率,晶体几何形状,变化的场强和空间电荷效应引起的。预先放大的信号使用数字光谱电子学处理。考虑到响应函数,串扰贡献和平均过程,这意味着由于Ge晶体和数字信号处理电子器件的细分而提出了新颖的方法。

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