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闪烁体高增益雪崩流光光电导型有源矩阵平板成像仪:固态 SHARP 传感器结构的零空间频率 X 射线成像特性。

Scintillator high-gain avalanche rushing photoconductor active-matrix flat panel imager: zero-spatial frequency x-ray imaging properties of the solid-state SHARP sensor structure.

机构信息

Department of Radiation Oncology, Sunnybrook Health Sciences Center, Toronto, Ontario, Canada.

出版信息

Med Phys. 2012 Nov;39(11):7102-9. doi: 10.1118/1.4760989.

Abstract

PURPOSE

The authors are investigating the feasibility of a new type of solid-state x-ray imaging sensor with programmable avalanche gain: scintillator high-gain avalanche rushing photoconductor active matrix flat panel imager (SHARP-AMFPI). The purpose of the present work is to investigate the inherent x-ray detection properties of SHARP and demonstrate its wide dynamic range through programmable gain.

METHODS

A distributed resistive layer (DRL) was developed to maintain stable avalanche gain operation in a solid-state HARP. The signal and noise properties of the HARP-DRL for optical photon detection were investigated as a function of avalanche gain both theoretically and experimentally, and the results were compared with HARP tube (with electron beam readout) used in previous investigations of zero spatial frequency performance of SHARP. For this new investigation, a solid-state SHARP x-ray image sensor was formed by direct optical coupling of the HARP-DRL with a structured cesium iodide (CsI) scintillator. The x-ray sensitivity of this sensor was measured as a function of avalanche gain and the results were compared with the sensitivity of HARP-DRL measured optically. The dynamic range of HARP-DRL with variable avalanche gain was investigated for the entire exposure range encountered in radiography∕fluoroscopy (R∕F) applications.

RESULTS

The signal from HARP-DRL as a function of electric field showed stable avalanche gain, and the noise associated with the avalanche process agrees well with theory and previous measurements from a HARP tube. This result indicates that when coupled with CsI for x-ray detection, the additional noise associated with avalanche gain in HARP-DRL is negligible. The x-ray sensitivity measurements using the SHARP sensor produced identical avalanche gain dependence on electric field as the optical measurements with HARP-DRL. Adjusting the avalanche multiplication gain in HARP-DRL enabled a very wide dynamic range which encompassed all clinically relevant medical x-ray exposures.

CONCLUSIONS

This work demonstrates that the HARP-DRL sensor enables the practical implementation of a SHARP solid-state x-ray sensor capable of quantum noise limited operation throughout the entire range of clinically relevant x-ray exposures. This is an important step toward the realization of a SHARP-AMFPI x-ray flat-panel imager.

摘要

目的

作者正在研究一种具有可编程雪崩增益的新型固态 X 射线成像传感器的可行性:闪烁体高增益雪崩冲光导有源矩阵平板成像器(SHARP-AMFPI)。本工作的目的是研究 SHARP 的固有 X 射线探测特性,并通过可编程增益证明其宽动态范围。

方法

开发了分布式电阻层(DRL)以在固态 HARP 中维持稳定的雪崩增益操作。理论和实验研究了 HARP-DRL 对光光子探测的信号和噪声特性,作为雪崩增益的函数,并将结果与以前对 SHARP 的零空间频率性能进行研究的 HARP 管(电子束读出)进行了比较。对于这项新的研究,通过将 HARP-DRL 与结构化碘化铯(CsI)闪烁体直接光学耦合,形成了固态 SHARP X 射线图像传感器。作为雪崩增益的函数测量了该传感器的 X 射线灵敏度,并将其与光学测量的 HARP-DRL 灵敏度进行了比较。研究了具有可变雪崩增益的 HARP-DRL 在放射学/荧光透视(R/F)应用中遇到的整个曝光范围内的动态范围。

结果

HARP-DRL 的电场信号显示出稳定的雪崩增益,与雪崩过程相关的噪声与理论和以前从 HARP 管获得的测量结果吻合良好。这一结果表明,当与 CsI 结合用于 X 射线检测时,HARP-DRL 中与雪崩增益相关的额外噪声可以忽略不计。使用 SHARP 传感器进行的 X 射线灵敏度测量与 HARP-DRL 的光学测量产生了相同的电场依赖性雪崩增益。调整 HARP-DRL 中的雪崩倍增增益使动态范围非常宽,涵盖了所有临床相关的医学 X 射线曝光。

结论

这项工作表明,HARP-DRL 传感器使能够实现一种实用的 SHARP 固态 X 射线传感器,该传感器能够在整个临床相关 X 射线曝光范围内实现量子噪声限制操作。这是实现 SHARP-AMFPI X 射线平板成像器的重要一步。

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