Wang Y, Ma X R, Qian S, et al. The study of test method of time characteristic for ultra-fast-MCP-PMT[J]. Opto-Electron Eng, 2020, 47(2): 190635. doi: 10.12086/oee.2020.190635
Citation: Wang Y, Ma X R, Qian S, et al. The study of test method of time characteristic for ultra-fast-MCP-PMT[J]. Opto-Electron Eng, 2020, 47(2): 190635. doi: 10.12086/oee.2020.190635

The study of test method of time characteristic for ultra-fast-MCP-PMT

    Fund Project: Supported by National Natural Science Foundation of China (11675205, 11675196) and Chinese Academy of Sciences Youth Innovation Promotion Association and State Key Laboratory of Particle Detection and Electronics (SKLPDE-ZZ-201902, SKLPDE-ZZ-201907)
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  • Study of the time characteristics of photomultiplier tube with ultra-fast time characteristics has an important guiding role for the further development of ultra-fast time response microchannel plate photomultiplier tube (FPMT). Based on the VME test system in high-energy physics and picosecond laser with single-photon pulse mode, this manuscript designs a device to test the FPMT with 25 ps system error. The time characteristics of various FPMTs were tested by optimizing the FPMT signal readout anode, the voltage divider structure and voltage division ratio. The intrinsic time lower limit value of the FPMT in the non-single-photon working mode, is proposed to compare and analyze the time resolution of different FPMTs in different working states. After completing various optimized readout anode structural design for the FPMTs, it can be find that the best FPMT prototype in our Lab has the best intrinsic time resolution lower limit of 30 ps.
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  • [1] 孙建宁, 任玲, 丛晓庆, 等.一种大尺寸微通道板型光电倍增管[J].红外与激光工程, 2017, 46(4): 0402001.

    Google Scholar

    Sun J N, Ren L, Cong X Q, et al. Large-area micro-channel plate photomultiplier tube[J]. Infrared and Laser Engineering, 2017, 46(4): 0402001.

    Google Scholar

    [2] Wang Y F, Qian S, Zhao T, et al. A new design of large area MCP-PMT for the next generation neutrino experiment[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2012, 695: 113-117.

    Google Scholar

    [3] Gao F, Huang G R, Heng Y K, et al. Status of the 20 inch MCP-PMT prototype development for JUNO experiment[J]. Journal of Physics: Conference Series, 2017, 888(1): 012050.

    Google Scholar

    [4] Chang Y P, Huang G R, Heng Y K, et al. The R & D of the 20 in. MCP-PMTs for JUNO[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2016, 824: 143-144.

    Google Scholar

    [5] Barnyakov A Y, Barnyakov M Y, Bobrovnikov V S, et al. R & D of microchannel plate phototubes[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2006, 567(1): 17-20.

    Google Scholar

    [6] Kim H, Chen C T, Frisch H, et al. An application of micro-channel plate photomultiplier tube to positron emission tomography[J]. Physics Procedia, 2012, 37: 1480-1487.

    Google Scholar

    [7] Hirose S, Iijima T, Inami K, et al. Development of the micro-channel plate photomultiplier for the Belle Ⅱ time-of-propagation counter[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2015, 787: 293-296.

    Google Scholar

    [8] Leach S A, Lapington J S, Milnes J S, et al. Operation of microchannel plate PMTs with TOFPET multichannel timing electronics[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 2019, 936: 337-339.

    Google Scholar

    [9] 张赫, 乔川, 匡海鹏.基于激光测距的机载光电成像系统目标定位[J].光学 精密工程, 2019, 27(1): 8-16.

    Google Scholar

    Zhang H, Qiao C, Kuang H P. Target geo-location based on laser range finder for airborne electro-optical imaging system[J]. Optics and Precision Engineering, 2019, 27(1): 8-16.

    Google Scholar

    [10] Craven C, Bennis D C, Bond J L, et al. Large area microchannel plates for LAPPDTM[C]//Proceedings of Technology and Instrumentation in Particle Physics, 2014.

    Google Scholar

    [11] 丁继华. 4×4矩阵阳极微通道板光电倍增管的研制[J].光电子技术, 2015, 35(3): 214-216.

    Google Scholar

    Ding Jihua. The development of the 4×4 multi-anode micro-channel plate photomultiplier[J]. Optoelectronic Technology, 2015, 35(3): 214-216.

    Google Scholar

    [12] 赵文锦, 刘德林, 丁继华, 等.超高速光电倍增管的研制及其时间特性测试研究[J].光电子技术, 2008, 28(4): 267-269.

    Google Scholar

    Zhao W J, Liu D L, Ding J H, et al. Developed and time characteristic measure researched of the ultra-fast photoelectric multiplier[J]. Optoelectronic Technology, 2008, 28(4): 267-269.

    Google Scholar

    [13] Hamamatsu Photonics K K. Photomultipliers Tubes Basics and Application[M]. Tokyo: Hamamatsu K K, 2006: 12-70.

    Google Scholar

  • Overview: The micro channel plate (MCP) is a specially crafted microporous plate with millions of independent channels, each with secondary electron emission capability, which can be used as a standalone electronic multiplier amplifier. Due to the distance that electrons fly in the channel is much shorter than the traditional dynode, so the time performance is superior to the traditional dynode.

    The microchannel plate photomultiplier tube (MCP-PMT) can be divided into two types: a small-area near-focus type (FPMT) and a large-area electrostatic focus type (LPMT). The small size FPMT of proximity focusing construct has many advantages such as fast time response, strong anti-interference ability, small volume and light weight. It is especially suitable for the detection of fast and very weak signals, and the time characteristic TTS can be on the order of tens of picoseconds.

    A picosecond laser within single photon pulse operation mode is used as the test light source. The data acquisition system based on the Versa Module Eurocard (VME) Bus protocol, which widely used in high energy physics experiment. The single photon signal of the FPMT can be generate to be a NIM signal to the VME-TDC channel through the discriminator. The synchronous output signal of the picosecond laser also supplied ad the gate signal of the TDC. Then the data collected by the TDC will be transmitted to the computer and processed by the LabVIEW program. In the experiment, the time characteristics of a variety of FPMT prototypes were tested under different light intensities, different structured high-voltage dividers and different high-voltage distribution ratios.

    The results show that the structures of high-voltage divider and the high-voltage distribution ratios have a great influence on the time resolution of the same FPMT. By optimizing the FPMT's voltage divider structure and selecting the appropriate high voltage distribution ratio, its time characteristics can be effectively improved.

    The intrinsic time lower limit value of the FPMT in the non-single-photon working mode, is proposed to compare and analyze the time resolution of different FPMTs in different working states. After completing various optimized readout anode structural design for the FPMTs, it can be find that the best FPMT prototype in our Lab has the best intrinsic time resolution lower limit of 30 ps.

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