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Comparison of blue-green response between transmission-mode GaAsP-and GaAs-based photocathodes grown by molecular beam epitaxy |
Gang-Cheng Jiao(焦岗成)1,2, Zheng-Tang Liu(刘正堂)1, Hui Guo(郭晖)2, Yi-Jun Zhang(张益军)3 |
1 State Key Laboratory of Solidification Processing, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China; 2 Science and Technology on Low-Light-Level Night Vision Laboratory, Xi'an 710065, China; 3 School of Electronic and Optical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China |
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Abstract In order to develop the photodetector for effective blue-green response, the 18-mm-diameter vacuum image tube combined with the transmission-mode Al0.7Ga0.3As0.9P0.1/GaAs0.9P0.1 photocathode grown by molecular beam epitaxy is tentatively fabricated. A comparison of photoelectric property, spectral characteristic and performance parameter between the transmission-mode GaAsP-based and blue-extended GaAs-based photocathodes shows that the GaAsP-based photocathode possesses better absorption and higher quantum efficiency in the blue-green waveband, combined with a larger surface electron escape probability. Especially, the quantum efficiency at 532 nm for the GaAsP-based photocathode achieves as high as 59%, nearly twice that for the blue-extended GaAs-based one, which would be more conducive to the underwater range-gated imaging based on laser illumination. Moreover, the simulation results show that the favorable blue-green response can be achieved by optimizing the emission-layer thickness in a range of 0.4 μ-0.6 μ.
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Received: 05 November 2015
Revised: 30 December 2015
Accepted manuscript online:
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PACS:
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85.60.Ha
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(Photomultipliers; phototubes and photocathodes)
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73.61.Ey
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(III-V semiconductors)
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79.60.-i
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(Photoemission and photoelectron spectra)
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73.40.Kp
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(III-V semiconductor-to-semiconductor contacts, p-n junctions, and heterojunctions)
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Fund: Project supported by the National Natural Science Foundation of China (Grant No. 61301023) and the Science and Technology on Low-Light-Level Night Vision Laboratory Foundation, China (Grant No. BJ2014001). |
Corresponding Authors:
Gang-Cheng Jiao
E-mail: jiaogc613@163.com
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Cite this article:
Gang-Cheng Jiao(焦岗成), Zheng-Tang Liu(刘正堂), Hui Guo(郭晖), Yi-Jun Zhang(张益军) Comparison of blue-green response between transmission-mode GaAsP-and GaAs-based photocathodes grown by molecular beam epitaxy 2016 Chin. Phys. B 25 048505
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