Literature DB >> 29171067

Toward Scintillator High-Gain Avalanche Rushing Photoconductor Active Matrix Flat Panel Imager (SHARP-AMFPI): Initial fabrication and characterization.

James R Scheuermann1, Adrian Howansky1, Marc Hansroul2, Sébastien Léveillé2, Kenkichi Tanioka1, Wei Zhao1.   

Abstract

PURPOSE: We present the first prototype Scintillator High-Gain Avalanche Rushing Photoconductor Active Matrix Flat Panel Imager (SHARP-AMFPI). This detector includes a layer of avalanche amorphous Selenium (a-Se) (HARP) as the photoconductor in an indirect detector to amplify the signal and reduce the effects of electronic noise to obtain quantum noise-limited images for low-dose applications. It is the first time avalanche a-Se has been used in a solid-state imaging device and poses as a possible solution to eliminate the effects of electronic noise, which is crucial for low-dose imaging performance of AMFPI.
METHODS: We successfully deposited a solid-state HARP structure onto a 24 × 30 cm2 array of thin-film transistors (TFT array) with a pixel pitch of 85 μm. The HARP layer consists of 16 μm of a-Se with a hole-blocking and electron-blocking layer to prevent charge injection from the high-voltage bias and pixel electrodes, respectively. An electric field (ESe ) up to 105 V μm-1 was applied across the a-Se layer without breakdown. A 150 μm thick-structured CsI:Tl scintillator was used to form SHARP-AMFPI. The x-ray imaging performance is characterized using a 30 kVp Mo/Mo beam. We evaluate the spatial resolution, noise power, and detective quantum efficiency at zero frequency of the system with and without avalanche gain. The results are analyzed using cascaded linear system model (CLSM).
RESULTS: An avalanche gain of 76 ± 5 was measured at ESe = 105 V μm-1 . We demonstrate that avalanche gain can amplify the signal to overcome electronic noise. As avalanche gain is increased, image quality improves for a constant (0.76 mR) exposure until electronic noise is overcome. Our system is currently limited by poor optical transparency of our high-voltage electrode and long integrating time which results in dark current noise. These two effects cause high-spatial frequency noise to dominate imaging performance.
CONCLUSIONS: We demonstrate the feasibility of a solid-state HARP x-ray imager and have fabricated the largest active area HARP sensor to date. Procedures to reduce secondary quantum and dark noise are outlined. Future work will improve optical coupling and charge transport which will allow for frequency DQE and temporal metrics to be obtained.
© 2017 American Association of Physicists in Medicine.

Entities:  

Keywords:  avalanche gain; digital detectors; selenium; solid state

Mesh:

Substances:

Year:  2017        PMID: 29171067      PMCID: PMC5807187          DOI: 10.1002/mp.12693

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  15 in total

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2.  Screen optics effects on detective quantum efficiency in digital radiography: zero-frequency effects.

Authors:  A R Lubinsky; Wei Zhao; Goran Ristic; J A Rowlands
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3.  A simple method for determining the modulation transfer function in digital radiography.

Authors:  H Fujita; D Y Tsai; T Itoh; K Doi; J Morishita; K Ueda; A Ohtsuka
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4.  A spatial-frequency dependent quantum accounting diagram and detective quantum efficiency model of signal and noise propagation in cascaded imaging systems.

Authors:  I A Cunningham; M S Westmore; A Fenster
Journal:  Med Phys       Date:  1994-03       Impact factor: 4.071

5.  Development of solid-state avalanche amorphous selenium for medical imaging.

Authors:  James R Scheuermann; Amir H Goldan; Olivier Tousignant; Sébastien Léveillé; Wei Zhao
Journal:  Med Phys       Date:  2015-03       Impact factor: 4.071

6.  Deriving depth-dependent light escape efficiency and optical Swank factor from measured pulse height spectra of scintillators.

Authors:  Adrian Howansky; Boyu Peng; Anthony R Lubinsky; Wei Zhao
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7.  Indirect flat-panel detector with avalanche gain: fundamental feasibility investigation for SHARP-AMFPI (scintillator HARP active matrix flat panel imager).

Authors:  Wei Zhao; Dan Li; Alla Reznik; B J M Lui; D C Hunt; J A Rowlands; Yuji Ohkawa; Kenkichi Tanioka
Journal:  Med Phys       Date:  2005-09       Impact factor: 4.071

8.  A-Si:H/CsI(Tl) flat-panel versus computed radiography for chest imaging applications: image quality metrics measurement.

Authors:  Xinming Liu; Chris C Shaw
Journal:  Med Phys       Date:  2004-01       Impact factor: 4.071

9.  Active pixel imagers incorporating pixel-level amplifiers based on polycrystalline-silicon thin-film transistors.

Authors:  Youcef El-Mohri; Larry E Antonuk; Martin Koniczek; Qihua Zhao; Yixin Li; Robert A Street; Jeng-Ping Lu
Journal:  Med Phys       Date:  2009-07       Impact factor: 4.071

10.  Electroded avalanche amorphous selenium (a-Se) photosensor.

Authors:  Oleksandr Bubon; Giovanni Decrescenzo; Wei Zhao; Yuji Ohkawa; Kazunori Miyakawa; Tomoki Matsubara; Kenji Kikuchi; Kenkichi Tanioka; Misao Kubota; John A Rowlands; Alla Reznik
Journal:  Curr Appl Phys       Date:  2012-05       Impact factor: 2.480

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  5 in total

1.  Photon counting performance of amorphous selenium and its dependence on detector structure.

Authors:  Jann Stavro; Amir H Goldan; Wei Zhao
Journal:  J Med Imaging (Bellingham)       Date:  2018-10-30

2.  Comparison of CsI:Tl and Gd2 O2 S:Tb indirect flat panel detector x-ray imaging performance in front- and back-irradiation geometries.

Authors:  Adrian Howansky; Anastasiia Mishchenko; A R Lubinsky; Wei Zhao
Journal:  Med Phys       Date:  2019-09-23       Impact factor: 4.071

3.  Modeling Dark Current Conduction Mechanisms and Mitigation Techniques in Vertically Stacked Amorphous Selenium-Based Photodetectors.

Authors:  Le Thanh Triet Ho; Atreyo Mukherjee; Dragica Vasileska; John Akis; Jann Stavro; Wei Zhao; Amir H Goldan
Journal:  ACS Appl Electron Mater       Date:  2021-08-02

4.  Monte Carlo Solution of High Electric Field Hole Transport Processes in Avalanche Amorphous Selenium.

Authors:  Atreyo Mukherjee; Dragica Vasileska; John Akis; Amir H Goldan
Journal:  ACS Omega       Date:  2021-02-05

5.  Pixelated Vacuum Flat Panel Detector Using ZnS Photoconductor and ZnO Nanowires Cold Cathode.

Authors:  Delin Hu; Xingpeng Bai; Chengyun Wang; Zhipeng Zhang; Xiaojie Li; Guofu Zhang; Shaozhi Deng; Jun Chen
Journal:  Nanomaterials (Basel)       Date:  2022-03-07       Impact factor: 5.076

  5 in total

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