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1

Wolken, Jerome J. Light detectors, photoreceptors, andimaging systems in nature. Oxford University Press, 1995.

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2

Shur, Michael S., and Artūras Žukauskas, eds. UV Solid-State Light Emitters and Detectors. Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-1-4020-2103-9.

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3

NATO Advanced Research Workshop (2003 Vilnius, Lithuania). UV solid-state light emitters and detectors. Kluwer Academic Publishers, 2004.

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4

Wolken, Jerome J. Light detectors, photoreceptors, and imaging systems in nature. Oxford University Press, 1995.

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5

Cysewska-Sobusiak, Anna. Problemy metrologiczne identyfikacji cech obiektu żywego poddanego nieinwazyjnej transiluminacji. Wydawn. Politechniki Poznańskiej, 1995.

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6

Council for Optical Radiation Measurements (U.S.). Bibliography of flux integrating devices for radiometric and photometric applications, 2000. Council for Optical Radiation Measurements, 2000.

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7

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

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8

Paul, Sierak, and Society of Photo-optical Instrumentation Engineers., eds. High-frequency analog fiber optic systems, 17-18 September 1990, San Jose, California. The Society, 1991.

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9

Kupperman, D. S. Assessment of leak detection systems for LWRs. Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1988.

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10

J, Linden Kurt, Society of Photo-optical Instrumentation Engineers., and United States. Advanced Research Projects Agency., eds. Laser diode and LED applications III: 10-11 February, 1997, San Jose, California. SPIE, 1997.

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11

Workshop, on Ring Imaging Cherenkov Detectors (1st 1993 Bari Italy). Experimental techniques of Cherenkov light imaging: Proceedingsof the First Workshop on Ring Imaging Cherenkov Detectors, Bari, Italy, June 2-5 1993. North-Holland, 1994.

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12

Murphy, Maggie. High-tech DIY projects with electronics, sensors, and LEDs. PowerKids Press, 2015.

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13

Kollias, Nikiforos. Photonic therapeutics and diagnostics VI: 23-25 January 2010, San Francisco, California, United States. Edited by SPIE (Society). SPIE, 2010.

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14

Zukauskas, Arturas, and Michael S. Shur. UV Solid-State Light Emitters and Detectors. Springer, 2012.

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15

Wolken, Jerome J. Light Detectors, Photoreceptors, and Imaging Systems in Nature. Oxford University Press, 1995.

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16

Light Detectors, Photoreceptors, and Imaging Systems in Nature. Oxford University Press, Incorporated, 1995.

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17

Rieke, George. Detection of Light: From the Ultraviolet to Submillimeter. 2nd ed. Cambridge University Press, 2002.

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18

Rieke, George. Detection of Light: From the Ultraviolet to the Submillimeter. 2nd ed. Cambridge University Press, 2002.

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19

Johnson, Mark. Photodetection and Measurement: Maximizing Performance in Optical Systems. McGraw-Hill Professional, 2003.

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20

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 vac
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21

Encyclopedia of Electronic Components Volume 3: Sensors for Location, Presence, Proximity, Orientation, Oscillation, Force, Load, Human Input, Liquid ... Light, Heat, Sound, and Electricity. Maker Media, Inc, 2016.

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22

Light scattering detectors for size exclusion chromatography: Assessment and applications in reactive processing. National Library of Canada = Bibliothèque nationale du Canada, 1991.

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23

UV Solid-State Light Emitters and Detectors (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2004.

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24

(Editor), Michael S. Shur, and Arturas Zukauskas (Editor), eds. UV Solid-State Light Emitters and Detectors (Nato Science Series: II: Mathematics, Physics and Chemistry). Springer, 2004.

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25

Rieke, G. H. Detection of Light: From the Ultraviolet to the Submillimeter. Cambridge University Press, 1996.

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26

Rieke, G. H. Detection of Light: From the Ultraviolet to the Submillimeter. Cambridge University Press, 2003.

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27

Rieke, George Henry, and G. H. Rieke. Detection of Light: From the Ultraviolet to the Submillimeter. Cambridge University Press, 1995.

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28

Light Trapping In Solar Cell And Photodetector Devices. Elsevier Science Publishing Co Inc, 2014.

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29

Wigmans, Richard. Instrumental Aspects. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786351.003.0005.

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This chapter deals with the practical aspects of designing, building and operating calorimeters. These aspects concern the structure of the detector (longitudinal and lateral segmentation, projective towers, hermeticity of 4π‎ devices), the readout of calorimeters based on detection of either light or charge signals, the operation in a magnetic field or at high luminosity, and the effects of radiation damage and how to deal with these. Also discussed are procedures for handling the signals, and using these to create triggers that may be used to select events of interest. Auxiliary equipment th
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30

Banerjee, Amit, Hiroshi Inokawa, Arindam Biswas, Aritra Acharyya, and Jintendra Nath Roy. Emerging Trends in Terahertz Solid-State Physics and Devices: Sources, Detectors, Advanced Materials, and Light-matter Interactions. Springer, 2020.

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31

Thomas, Michael E. Optical Propagation in Linear Media. Oxford University Press, 2006. http://dx.doi.org/10.1093/oso/9780195091618.001.0001.

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A typical optical system is composed of three basic components: a source, a detector, and a medium in which the optical energy propagates. Many textbooks cover sources and detectors, but very few cover propagation in a comprehensive way, incorporating the latest progress in theory and experiment concerning the propagating medium. This book fulfills that need. It is the first comprehensive and self-contained book on this topic. It is useful reference book for researchers, and a textbook for courses like Laser Light Propagation, Solid State Optics, and Optical Propagation in the Atmosphere.
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32

Murphy, Maggie. High-Tech DIY Projects with Electronics, Sensors, and LEDs. Rosen Publishing Group, 2014.

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33

Definition of a near real time microbiological monitor for space vehicles: Final report. University of Alabama in Huntsville, 1989.

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34

Solymar, L., D. Walsh, and R. R. A. Syms. Optoelectronics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198829942.003.0013.

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The properties of light detectors and light emitting diodes (LEDs) are discussed. Electro-optic, photorefractive, and nonlinear materials are introduced. The phenomenon of phase conjugation is explained. Interaction between acoustic and light waves is shown to be possible. The significance of integrated optics is discussed. Bistability due to the action of nonlinear Fabry–Perot cavities is explained. Optical switching is shown to be an application of micro-electro-mechanical effects. The complicated phenomenon electro-absorption in quantum well structures and its applications are discussed.
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35

Blaker, J. Warren, and Peter Schaeffer. Optics: An Introduction for Technicians and Technologists. Prentice Hall, 1999.

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36

Blaker, J. Warren, and Peter Schaeffer. Optics: An Introduction for Technicians and Technologists. Prentice Hall, 1999.

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37

Shenoy, M. R., and A. K. Ghatak. Fiber Optics Through Experiments. World Scientific Pub Co Inc, 1999.

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38

Khijwania, Sunil K., Bishnu P. Pal, Ajoy Ghatak, and M. R. Shenoy. Fiber Optics Through Experiments. Viva Books Private Limited, 2015.

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39

Butz, Martin V., and Esther F. Kutter. Primary Visual Perception from the Bottom Up. Oxford University Press, 2017. http://dx.doi.org/10.1093/acprof:oso/9780198739692.003.0008.

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This chapter addresses primary visual perception, detailing how visual information comes about and, as a consequence, which visual properties provide particularly useful information about the environment. The brain extracts this information systematically, and also separates redundant and complementary visual information aspects to improve the effectiveness of visual processing. Computationally, image smoothing, edge detectors, and motion detectors must be at work. These need to be applied in a convolutional manner over the fixated area, which are computations that are predestined to be solved
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40

Light Trapping in Solar Cell and Photo-Detector Devices. Elsevier, 2015. http://dx.doi.org/10.1016/c2012-0-07130-x.

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41

Wright, A. G. PMT background. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.003.0006.

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Photomultiplier (PMT) background derives from sources of photons, and from photoelectrons generation within a PMT. These may also act as a source of optical and radioactive background for neighbouring detectors. Dark count and dark current are reconciled by allowing for leakage currents flowing into the anode. The optimal gain setting follows from these considerations. Sources of background generated by the photocathode include thermionic emission; light generated within the PMT; gamma rays; muons and minimum ionizing particles (MIPs); insulator glow in the region of the anode; and residual ga
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42

Gallop, J., and L. Hao. Superconducting Nanodevices. Edited by A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.17.

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This article reviews recent progress in superconducting nanodevices, with particular emphasis on fabrication methods developed for superconducting nanowires and nanoscale Josephson junctions based on different barrier materials. It evaluates the future potential of superconducting nanodevices, including nano-superconducting quantum interference devices (nanoSQUIDs), in light of improvements in nanoscale fabrication and manipulation techniques, along with their likely impacts on future quantum technology and measurement. The article first considers efforts to realize devices at the physical sca
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43

An Introduction to X-Ray Physics, Optics, and Applications. Princeton University Press, 2017.

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44

Wright, A. G. The Photomultiplier Handbook. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199565092.001.0001.

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This handbook is aimed at helping users of PMTs who are faced with the challenge of designing sensitive light detectors for scientific and industrial purposes. The raison d’être for photomultipliers (PMTs) stems from four intrinsic attributes: large detection area, high, and noiseless gain, and wide bandwidth. Detection involves a conversion process from photons to photoelectrons at the photocathode. Photoelectrons are subsequently collected and increased in number by the action of an incorporated electron multiplier. Photon detection, charge multiplication, and many PMT applications are stati
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45

Fonash, Stephen. Introduction to Light Trapping in Solar Cell and Photo-Detector Devices. Elsevier Science & Technology Books, 2014.

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46

Vigdor, Steven E. The Edge of the Abyss. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198814825.003.0008.

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Chapter 8 deals with the apparent perching of the physical vacuum state in the universe on the edge between stability and meta-stability, at least within the standard model, in light of the mass of the recently discovered Higgs boson. Standard model calculations mapping vacuum stability as a function of Higgs boson and top quark masses are presented. The dramatic unveiling of the Higgs boson signal by the enormous detectors at the Large Hadron Collider is reviewed. Possible interpretations and implications of meta-stability, including unlikely doomsday scenarios, are discussed. The hierarchy p
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47

Wang, Lihong V., and Hsin-i. Wu. Biomedical Optics: Principles and Imaging. Wiley & Sons, Incorporated, John, 2012.

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48

Wu, Hsin-I., and Lihong V. Wang. Biomedical Optics: Principles and Imaging. Wiley & Sons, Incorporated, John, 2012.

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49

Biomedical Optics. Wiley & Sons Canada, Limited, John, 2012.

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50

Biomedical Optics: Principles and Imaging. Wiley-Interscience, 2007.

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