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1

Theuwissen, Albert J. P., and Peter Seitz. Single-photon imaging. Heidelberg: Springer, 2011.

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2

Hayashi, Hiroaki, Natsumi Kimoto, Takashi Asahara, Takumi Asakawa, Cheonghae Lee, and Akitoshi Katsumata. Photon Counting Detectors for X-ray Imaging. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-62680-8.

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3

Fraser, G. W. X-ray detectors in astronomy. Cambridge: Cambridge University Press, 2009.

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4

Itzler, Mark A. Advanced photon counting techniques IV: 7-8 April 2010, Orlando, Florida, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2010.

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5

Becker, W. Advanced photon counting techniques II: 9-11 September 2007, Boston, Massachusetts, USA. Edited by Society of Photo-optical Instrumentation Engineers. Bellingham, Wash: SPIE, 2007.

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6

Itzler, Mark A. Advanced photon counting techniques V: 27-29 April 2011, Orlando, Florida, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2011.

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7

J, Schanda, Lippényi T, International Measurement Confederation, Society of Photo-optical Instrumentation Engineers. Hungarian Chapter., and Méréstechnikai és Automatizálási Tudományos Egyesület (Hungary), eds. 14th Symposium on Photonic Measurements: 1-3 June 1992, Sopron, Hungary. Bellingham, Wash., USA: SPIE, 1993.

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8

Buglia, James J. Photon counts from stellar occultation sources. [Washington, DC]: National Aeronautics and Space Administration, Scientific and Technical Information Office, 1987.

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9

(Society), SPIE, ed. Advanced photon counting techniques III: 14-16 April 2009, Orlando, Florida, United States. Bellingham, Wash: SPIE, 2009.

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10

Gunapala, S. D. Advances in infrared photodetectors. Amsterdam: Academic Press, 2011.

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11

X-ray detectors in astronomy. Cambridge [England]: Cambridge University Press, 1989.

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12

Fraser, G. W. X-ray detectors in astronomy. Cambridge: Cambridge University Press, 1989.

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13

E, Beletic Jenna, Beletic James W, and Amico Paola, eds. Scientific detectors for astronomy 2005: Explorers of the photon odyssey. Dordrecht: Springer, 2005.

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14

Srivastava, Ajay Kumar. Si Detectors and Characterization for HEP and Photon Science Experiment. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-19531-1.

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15

International Measurement Confederation. Technical Committee on Photonic Measurements (Photon-Detectors). International Symposium. 13th International Symposium of the Technical Committee on Photonic Measurements (Photon-Detectors): Braunschweig, Federal Republic of Germany, 14-17 September 1987 : proceedings. Budapest: IMEKO Secretariat, 1987.

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16

Dereniak, Eustace L. Detectors and imaging devices: Infrared, focal plane, single photon : 4-5 August 2010, San Diego, California, United States. Edited by SPIE (Society). Bellingham, Wash: Spie, 2010.

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17

Grinberg, Anatoly. The discovery of the photon-drag effect: The Ioffe Institute in Leningrad. Falls Church, VA (7700 Leesburg Pike, #250, Falls Church 22043): Delphic Associates, 1986.

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18

C, Liu H., ed. Quantum well infrared photodetectors: Physics and applications. Berlin: Springer, 2007.

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19

The physics of quantum well infrared photodetectors. River Edge, NJ: World Scientific, 1997.

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20

Schneider, H. Quantum well infrared photodetectors: Physics and applications. Berlin: Springer, 2007.

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21

Society of Photo-optical Instrumentation Engineers, ed. Advanced photon counting techniques II: 9-11 September 2007, Boston, Massachusetts, USA. Bellingham, Wash: SPIE, 2007.

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22

Europe, SPIE, Akademie věd České republiky. Fyzikální ústav, and SPIE (Society), eds. Photon counting applications, quantum optics, and quantum information transfer and processing II: 20-21 April 2009, Prague, Czech Republic. Bellingham, Wash: SPIE, 2009.

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23

ESA Symposium on Photon Detectors for Space Instrumentation (1992 Noordwijk, Netherlands). Proceedings of an ESA Symposium on photon detectors for space instrumentation: ESTEC, Noordwijk, the Netherlands, 10-12 November 1992. Paris: European Space Agency, 1992.

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24

Harper, David B. Signal-induced noise effects in a photon counting system for stratospheric ozone measurement. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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25

Harper, David B. Signal-induced noise effects in a photon counting system for stratospheric ozone measurement. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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26

Harper, David B. Signal-induced noise effects in a photon counting system for stratospheric ozone measurement. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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27

Szczygieł, Robert. Szybkie, wielokanałowe układy scalone pracujące w trybie zliczania pojedynczych fotonów w systemach detekcji niskoenergetycznego promieniowania X: Fast, multichannel ASICs working in the single-photon-counting mode in soft X-ray detection systems. Kraków: Wydawnictwa AGH, 2012.

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28

Rieke, G. H. Detection of light: From the ultraviolet to the submillimeter. Cambridge: Cambridge University Press, 1994.

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29

Detection of light: From the ultraviolet to the submillimeter. 2nd ed. Cambridge, UK: Cambridge University Press, 2003.

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30

Abrahamian, Yuri. Methods and materials for remote sensing: Infrared photo-detectors, radiometers and arrays. New York: Springer Science+Business Media, LLC, 2004.

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31

Phillips, Hywel Thorburn. Track reconstruction in the forward muon subdetector and investigations concerning the Photon remnant in theH1 detector at HERA. Birmingham: University of Birmingham, 1994.

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32

Deptuch, Grzegorz. Monolityczne detektory pikselowe w zastosowaniu do obrazowania niskoenergetycznych elektronów i miękkiego promieniowania X: Monolithic active pixel sensors in application for imaging of low-energy electrons and soft X-ray photos. Kraków: Wydawnictwa AGH, 2013.

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33

Infrared photon detectors. Bellingham, WA: SPIE Optical Engineering Press, 1995.

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34

1952-, Smith Alan, ed. Selected papers on photon-counting detectors. Bellingham, Wash., USA: SPIE Optical Engineering Press, 1998.

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35

1950-, Becker W., Society of Photo-optical Instrumentation Engineers., Boston Electronics Corporation, and Becker & Hickl., eds. Advanced photon counting techniques: 1-3 October, 2006, Boston, Massachusetts, USA. Bellingham, Wash: SPIE, 2006.

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36

James, Ralph, Ivan Prochazka, and Roman Sobolewski. Photon Counting Applications 2017. SPIE, 2018.

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37

Theuwissen, Albert J. P., and Peter Seitz. Single-Photon Imaging. Springer, 2011.

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38

Theuwissen, Albert J. P., and Peter Seitz. Single-Photon Imaging. Springer, 2013.

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39

Semi-annual progress report for the joint NASA/Goddard-University of Maryland research program in charged particle and high energy photon detector technology under grant NGR 21-002-316, September 1986 to March 1987. College Park, MD: Dept. of Physics and Astronomy, University of Maryland, 1987.

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40

United States. National Aeronautics and Space Administration., ed. Final report for the joint NASA/Goddard-University of Maryland research program in charged particle and high energy photon detector technology. College Park, MD: Dept. of Physics and Astronomy, University of Maryland, 1990.

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41

United States. National Aeronautics and Space Administration., ed. Semi-annual progress report for the joint NASA/Goddard-University of Maryland research program in charged particle and high energy photon detector technology under grant NGR 21-002-316, April 1987 to September 1987. College Park, MD: Dept. of Physics and Astronomy, University of Maryland, 1988.

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42

Wright, A. G. Why photomultipliers? Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0001.

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Photon detectors transform information, carried by light, to an electrical analogue. Signals contain information on the time of occurrence and the intensity in terms of the number of photons involved. Photon rates may be constant with time, slowly varying, or transient in the form of pulses. The time response is specified in terms of some property of the pulse shape, such as its rise time, or it may be expressed in terms of bandwidth. Light detector applications fall into two categories: imaging and non-imaging; however, only the latter are considered. Detectors can be further divided into vacuum and solid state devices. Vacuum devices include photomultipliers (PMTs), microchannel plate PMTs (MCPPMTs), and hybrid devices in which a silicon device replaces the discrete dynode multiplier. PIN diodes, avalanche photodiodes (APDs), pixelated silicon PMTs (SiPMs), and charge-coupled devices (CCDs) are examples of solid state light detectors.
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43

I, Ryzhiĭ V., ed. Intersubband infrared photodetectors. River Edge, N.J: World Scientific, 2003.

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44

Migdall, Alan, Sergey V. Polyakov, Jingyun Fan, and Joshua C. Bienfang. Single-Photon Generation and Detection: Physics and Applications. Elsevier Science & Technology Books, 2013.

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45

M, Davidson Frederic, and United States. National Aeronautics and Space Administration., eds. Avalanche photodiode photon counting receivers for space-borne lidars. [Baltimore, Md.]: Johns Hopkins University, Electrical & Computer Engineering, 1991.

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46

Srivastava, Ajay Kumar. Si Detectors and Characterization for HEP and Photon Science Experiment: How to Design Detectors by TCAD Simulation. Springer, 2019.

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47

Schneider, Harald, and Hui C. Liu. Quantum Well Infrared Photodetectors: Physics and Applications. Springer, 2014.

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48

J, Fenyves Ervin, and Society of Photo-optical Instrumentation Engineers., eds. Scintillating fiber technology and applications II: 29 July 1994, San Diego, California. Bellingham, Wash., USA: SPIE, 1994.

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49

Liu, Hui Chun, and Harald Schneider. Quantum Well Infrared Photodetectors (Springer Series in Optical Sciences). Springer, 2006.

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50

Towe, E., and D. Pal. Intersublevel quantum-dot infrared photodetectors. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533060.013.7.

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This article describes the basic principles of semiconductor quantum-dot infrared photodetectors based on conduction-band intersublevel transitions. Sufficient background material is discussed to enable an appreciation of the subtle differences between quantum-well and quantum-dot devices. The article first considers infrared photon absorption and photon detection, along with some metrics for photon detectors and the detection of infrared radiation by semiconductors. It then examines the optical matrix element for interband, intersubband and intersublevel transitions before turning to experimental single-pixel quantum-dot infrared photodetectors. In particular, it explains the epitaxial synthesis of quantum dots and looks at mid-wave and long-wave quantum-dot infrared photodetectors. It also evaluates the characteristics of quantum-dot detectors and possible development of quantum-dot focal plane array imagers. The article concludes with an assessment of the challenges and prospects for high-performance detectors and arrays.
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