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用于碲化镉锌像素探测器电荷损失校正的双极性脉冲处理与分析

Dual-polarity pulse processing and analysis for charge-loss correction in cadmium-zinc-telluride pixel detectors.

作者信息

Abbene Leonardo, Gerardi Gaetano, Principato Fabio, Bettelli Manuele, Seller Paul, Veale Matthew C, Fox Oliver, Sawhney Kawal, Zambelli Nicola, Benassi Giacomo, Zappettini Andrea

机构信息

Dipartimento di Fisica e Chimica, University of Palermo, Viale delle Scienze, Edificio 18, Palermo 90128, Italy.

IMEM/CNR, Parco Area delle Scienze 37/A, Parma 43100, Italy.

出版信息

J Synchrotron Radiat. 2018 Jul 1;25(Pt 4):1078-1092. doi: 10.1107/S1600577518006422. Epub 2018 Jun 26.

Abstract

Charge losses at the inter-pixel gap are typical drawbacks in cadmium-zinc-telluride (CZT) pixel detectors. In this work, an original technique able to correct charge losses occurring after the application of charge-sharing addition (CSA) is presented. The method, exploiting the strong relation between the energy after CSA and the beam position at the inter-pixel gap, allows the recovery of charge losses and improvements in energy resolution. Sub-millimetre CZT pixel detectors were investigated with both uncollimated radiation sources and collimated synchrotron X-rays, at energies below and above the K-shell absorption energy of the CZT material. The detectors are DC coupled to fast and low-noise charge-sensitive preamplifiers (PIXIE ASIC) and followed by a 16-channel digital readout electronics, performing multi-parameter analysis (event arrival time, pulse shape, pulse height). Induced-charge pulses with negative polarity were also observed in the waveforms from the charge-sensitive preamplifiers (CSPs) at energies >60 keV. The shape and the height of these pulses were analysed, and their role in the mitigation of charge losses in CZT pixel detectors. These activities are in the framework of an international collaboration on the development of energy-resolved photon-counting systems for spectroscopic X-ray imaging (5-140 keV).

摘要

像素间隙处的电荷损失是碲锌镉(CZT)像素探测器的典型缺陷。在这项工作中,提出了一种能够校正电荷共享加法(CSA)应用后发生的电荷损失的原创技术。该方法利用CSA后的能量与像素间隙处束流位置之间的强关系,实现了电荷损失的恢复和能量分辨率的提高。使用非准直辐射源和准直同步加速器X射线对亚毫米级CZT像素探测器进行了研究,能量范围低于和高于CZT材料的K壳层吸收能量。探测器直流耦合到快速、低噪声的电荷灵敏前置放大器(PIXIE ASIC),随后是16通道数字读出电子设备,进行多参数分析(事件到达时间、脉冲形状、脉冲高度)。在能量>60 keV时,电荷灵敏前置放大器(CSP)的波形中也观察到了负极性的感应电荷脉冲。分析了这些脉冲的形状和高度,以及它们在减轻CZT像素探测器电荷损失方面的作用。这些活动是国际合作开发用于光谱X射线成像(5 - 140 keV)的能量分辨光子计数系统框架内的一部分。

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