虚拟Frisch栅CdZnTeSe探测器的性能研究

Q3 Physics and Astronomy Instruments Pub Date : 2022-10-26 DOI:10.3390/instruments6040069
U. Roy, G. Camarda, Yonggang Cui, R. James
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引用次数: 1

摘要

用于x射线和伽马射线光谱和成像的核探测器是许多国土安全、医学成像、天体物理学和其他应用中的重要工具。由于低温冷却系统施加的操作限制,这些应用中的大多数需要室温操作。CdZnTe(CZT)已成为具有所需检测性能的主要材料,并且CZT晶体已在商业上使用了三十年。然而,CdZnTe仍然存在高密度性能限制本征缺陷的长期问题,如Te夹杂物和位错壁网络(亚晶界)。最近发明的一种新型四元材料CdZnTeSe在辐射检测方面表现出优异的材料性能。发现该材料没有位错网络,具有减少的Te夹杂物,并且具有更好的成分均匀性。虚拟Frisch栅格探测器是由取自CdZnTeSe铸锭的晶体制成的,该铸锭是通过移动加热器方法生长的。探测器由生长状态的铸锭制成,绕过了工业级CZT常用的生长后退火工艺。使用1–6µs的放大器整形时间,研究了不同Frisch网格长度的探测器的性能。对于3mm的最佳Frisch网格长度,探测器显示出高质量的光谱性能,在662keV下测得的能量分辨率约为1.1%。观察到电荷收集在更长的Frisch格栅中增强。
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Performance Study of Virtual Frisch Grid CdZnTeSe Detectors
Nuclear detectors for x-ray and gamma-ray spectroscopy and imaging are a vital tool in many homeland security, medical imaging, astrophysics and other applications. Most of these applications require room-temperature operation due to the operational constraints imposed by a cryogenic cooling system. CdZnTe (CZT) has been the main material with the desired detection properties, and CZT crystals have been used commercially for three decades. However, CdZnTe still suffers from long-standing issues of high densities of performance-limiting intrinsic defects such as Te inclusions and networks of dislocation walls (sub-grain boundaries). A recently invented new quaternary material CdZnTeSe showed excellent material properties for radiation detection. The material was found to be free from dislocation networks, possess reduced Te inclusions, and have better compositional homogeneity. Virtual Frisch grid detectors were fabricated from crystals taken from a CdZnTeSe ingot that was grown by the traveling heater method. The detectors were fabricated from an as-grown ingot, bypassing the post-growth annealing process commonly practiced for industrial-grade CZT. The performances of the detectors were studied with different Frisch grid lengths using an amplifier shaping time ranging from 1–6 µs. The detectors showed high-quality spectroscopic performance with an as-measured energy resolution of ~1.1% at 662 keV for an optimum Frisch grid length of 3 mm. The charge collection was observed to enhance for longer Frisch grids.
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来源期刊
Instruments
Instruments Physics and Astronomy-Instrumentation
CiteScore
2.60
自引率
0.00%
发文量
70
审稿时长
11 weeks
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