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1

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

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2

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

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3

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

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4

Shi, Wei. Quantum well structures for infrared photodetection. Hauppauge, N.Y: Nova Science Publishers, 2009.

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5

Shi, Wei. Quantum well structures for infrared photodetection. Hauppauge, N.Y: Nova Science Publishers, 2009.

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6

International Symposium on Long Wavelength Infrared Detectors and Arrays, Physics and Applications (2nd 1994 Miami Beach, Fla.). Proceedings of the Second International Conference on Long Wavelength Infrared Dectectors and Arrays, Physics and Applications. Pennington, NJ: Electrochemical Society, 1995.

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7

International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications (5th 1997 Paris, France). Proceedings of the Fifth International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications. Pennington, NJ: Electrochemical Society, 1997.

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8

International, Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications (6th 1998 Boston Mass ). Proceedings of the Sixth International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications. Pennington, New Jersey: Electrochemical Society, 1999.

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9

International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications (3rd 1995 Chicago, Ill.). Proceedings of the Third International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications III. Pennington, NJ: Electrochemical Society, 1995.

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10

Electro-optical imaging system performance. 5th ed. Bellingham, Wash: SPIE, 2008.

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11

Electro-optical imaging system performance. Winter Park, FL: JCD Pub., 1995.

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12

Holst, Gerald C. Electro-optical imaging system performance. 4th ed. Winter Park, Fla., USA: Copublished by JCD Pub. and SPIE Optical Engineering Press, 2006.

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13

service), SpringerLink (Online, ed. Model of the Response Function of CUORE Bolometers. Dordrecht: Springer Science+Business Media B.V., 2011.

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14

Song, Jin-Joo. Ultrafast phenomena in semiconductors and nanostructure materials XIV: 24-27 January 2010, San Francisco, California, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2010.

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15

M, Razeghi, ed. Long wavelength infrared detectors. Amsterdam: Gordon and Breach, 1996.

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16

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

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17

Moon, Junhee. Investigation of multicolor quantum well infrared photodectors and type II superlattice infrared photodetectors. 2004.

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18

H, Francombe Maurice, and Vossen John L, eds. Homojunction and quantum-well infrared detectors. San Diego: Academic Press, 1995.

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19

Homojucntion and Quantum-Well Infrared Detectors. Elsevier, 1995. http://dx.doi.org/10.1016/s1079-4050(06)x8001-8.

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20

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

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21

Omar, Manasreh Mahmoud, ed. Semiconductor quantum wells and superlattices for long-wavelength infrared detectors. Boston: Artech House, 1993.

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22

(Editor), Sheng S. Li, H. C. Liu (Editor), M. Z. Tidrow (Editor), and S. D. Gunapala (Editor), eds. Long Wavelength Infrared Detectors and Arrays: Physics and ApplicationsVI. Electrochemical Society, 1999.

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23

(Editor), Sheng S. Li, H. C. Liu (Editor), and M. Z. Tidrow (Editor), eds. Proceedings of the Fifth International Symposium on Long Wavelength Infrared Detectors and Arrays: Physics and Applications (Proceedings). Electrochemical Society, 1998.

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24

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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25

L, Dereniak Eustace, Sampson Robert E, and Society of Photo-optical Instrumentation Engineers., eds. Infrared detectors and focal plane arrays V: 14-17 April 1998, Orlando, Florida. Bellingham, Wash., USA: SPIE, 1998.

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26

Francombe, Maurice H., and John L. Vossen. Advances in Research and Development: Homojunction and Quantum-Well Infrared Detectors. Elsevier Science & Technology Books, 1995.

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27

L, Dereniak Eustace, Sampson Robert E, and Society of Photo-optical Instrumentation Engineers., eds. Infrared detectors and focal plane arrays VI: 25-27 April, 2000, Orlando, [Florida] USA. Bellingham, Washington: SPIE, 2000.

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28

Maurice H. Francombe (Series Editor) and John L. Vossen (Series Editor), eds. Advances in Research and Development: Homojunction and Quantum-Well Infrared Detectors, Volume 21: Homojunction and Quantum-Well Infrared Detectors (Thin Films). Academic Press, 1995.

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29

L, Dereniak Eustace, Sampson Robert E, and Society of Photo-optical Instrumentation Engineers., eds. Infrared detectors and focal plane arrays VIII: 15-16 August, 2006, San Diego, California, USA. Bellingham, Wash: SPIE, 2006.

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30

(Editor), Robert E. Sampson, Eustace L. Dereniak (Editor), and Society of Photo-Optical Instrumentation Engineers (Corporate Author), eds. Infrared Detectors and Focal Plan Arrays VII: 2-3 April, 2002, Orlando, Florida USA (Proceeding Series). SPIE-International Society for Optical Engine, 2002.

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31

Temperature Dependence of Dark Current in Quantum Well Infrared Detectors. Storming Media, 2002.

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32

Razeghi. Long Wavelength Infrared Detectors (Optoelectronic Properties of Semiconductors and Superlattices, V. 1). CRC, 1997.

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33

(Editor), Mahmoud Omar Manasreh, Bethanie J. H. Stadler (Editor), Ian Ferguson (Editor), and Yong-Hang Zhang (Editor), eds. Infrared Applications of Semiconductors III: Symposium Held November 29-December 2, 1999, Boston, Massachusetts, U.S.A (Materials Research Society Symposium Proceedings). Materials Research Society, 2000.

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34

Demonstration of a Near and Mid-Infrared Detector Using Multiple Step Quantum Wells. Storming Media, 2003.

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35

Omar, Manasreh Mahmoud, Myers Thomas H, and Julien François H, eds. Infrared applications of semiconductors--materials, processing, and devices: Symposium held December 2-5, 1996, Boston, Massachusetts, U.S.A. Pittsburgh, Pa: Materials Research Society, 1997.

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36

H, Francombe Maurice, and Vossen John L, eds. Advances in research and development: Heterojunctions for high-speed and infrared applications. San Diego: Academic Press, 1998.

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37

Infrared Applications of Semiconductors--Materials, Processing, and Devices: Materials, Processing, and Devices : Symposium Held December 2-5, 1996, Boston, ... Research Society Symposium Proceedings). Materials Research Society, 1997.

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38

Holst, Gerald C. Electro-Optical Imaging System Performance (Spie Press Monograph). 3rd ed. SPIE-International Society for Optical Engine, 2003.

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39

Holst, Gerald C. Electro-Optical Imaging System Performance. 2nd ed. Jcd Publishing and Spie Optical Engineering P, 2000.

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40

Electro-Optical Imaging System Performance. 2nd ed. SPIE-International Society for Optical Engine, 2000.

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41

D, Gunapala S., and United States. National Aeronautics and Space Administration., eds. 15-[micro]m 128 x 128 GaAs/Al[subscript x]Ga[subscripts 1-x]As quantum well infrared photodetector focal plane array camera. [Washington, DC: National Aeronautics and Space Administration, 1997.

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42

Advances in Research and Development, Volume 23: Modeling of Film Deposition for Microelectronic Applications (Thin Films). Academic Press, 1997.

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43

Maurice H. Francombe (Series Editor) and John L. Vossen (Series Editor), eds. Advances in Research and Development, Volume 23: Modeling of Film Deposition for Microelectronic Applications (Thin Films). Academic Press, 1997.

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44

Tunable Bandwidth Quantum Well Infrared Photo Detector (TB-QWIP). Storming Media, 2003.

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45

Manfred, Helm, ed. Long wavelength infrared emitters based on quantum wells and superlattices. Amsterdam, Netherlands: Gordon & Breach, 2000.

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46

Adhikary, Sourav, and Subhananda Chakrabarti. Quaternary Capped InAs/GaAs Quantum Dot Infrared Photodetectors: From Materials to Devices. Springer, 2017.

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47

Adhikary, Sourav. Quaternary Capped InAs/GaAs Quantum Dot Infrared Photodetectors: From Materials to Devices. Springer, 2019.

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48

Adhikary, Sourav, and Subhananda Chakrabarti. Quaternary Capped InAs/GaAs Quantum Dot Infrared Photodetectors: From Materials to Devices. Springer, 2017.

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49

McDaniel, Donald L. Jr, M. Omar Manasreh, Richard H. Miles, and Sivalingam Sivananthan. Infrared Applications of Semiconductors II: Volume 484. University of Cambridge ESOL Examinations, 2014.

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50

Wang, Yeong-Cheng. Theoretical and experimental studies of the 2-dimensional grating coupled structures for III-V quantum well infrared photodetectors. 1994.

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