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1

Jacak, Lucjan. Quantum dots. Berlin: Springer, 1998.

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2

W, Koch S., ed. Semiconductor quantum dots. Singapore: World Scientific, 1993.

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3

Nanocrystals and quantum dots of group IV semiconductors. Stevenson Ranch, Calif: American Scientific Publishers, 2010.

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4

Optical properties of semiconductor quantum dots. Berlin: Springer, 1997.

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5

Quantum dots: Research, technology, and applications. New York: Nova Science Publishers, 2008.

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6

Borri, Paola. Coherent light-matter interaction in semiconductor quantum dots. Aachen: Shaker, 2004.

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7

Kroutvar, Miroslav. Charge and spin storage in quantum dots. Garching: Verein zur Förderung des Walter Schottky Institut der Techn. Univ. München, 2006.

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8

Takafumi, Yao, Woo Jong-Chun, Kikai Shinkō Kyōkai, and Hanʼguk Kwahak Chaedan, eds. Physics and applications of semiconductor quantum structures: Proceedings of the International Workshop on Physics and Applications of Semiconductor Quantum Structures (Asian Science Seminar), Cheju Island, Korea, October 18-23, 1998. Bristol, U.K: Institute of Physics Pub., 2001.

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9

International, Workshop on Physics and Applications of Semiconductor Quantum Structures (1998 Cheju Island Korea). Physics and applications of semiconductor quantum structures: Proceedings of the International Workshop on Physics and Applications of Semiconductor Quantum Structures (Asian Science Seminar), Cheju Island, Korea, October 18-23, 1998. Bristol, U.K: Institute of Physics Pub., 2001.

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10

Sabathil, Matthias. Opto-electronic and quantum transport properties of semiconductor nanostructures. Garching: Verein zur Förderung des Walter Schottky Instituts der Technischen Universität München, 2005.

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11

J, Krenner Hubert, Berezovsky Jesse, and Wiley online library, eds. Spins in optically active quantum dots: Concepts and methods. Weinheim: Wiley-VCH, 2010.

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12

International, Symposium on Quantum Confinement (3rd 1995 Chicago Ill ). Proceedings of the Third International Symposium on Quantum Confinement: Physics and applications [i.e. quantum wires and dots]. Pennington, NJ: Electrochemical Society, 1996.

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13

The quantum dot: A journey into the future of microelectronics. New York: Oxford University Press, 1995.

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14

Turton, Richard. The quantum dot: A journey into the future of microelectronics. Oxford: W.H. Freeman, 1995.

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15

International Conference on Modulated Semiconductor Structures (11th 2003 Nara, Japan). Proceedings of the 11th International Conference on Modulated Semiconductor Structures: MSS11 : held in Nara, Japan, 14-18, July 2003. Edited by Arakawa Yasuhiko. Amsterdam, The Netherlands: Elsevier, 2004.

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16

Masumoto, Yasuaki, and Toshihide Takagahara, eds. Semiconductor Quantum Dots. Berlin, Heidelberg: Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/978-3-662-05001-9.

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17

Chyi, Jen-Inn. Gallium nitride materials and devices VII: 23-26 January 2012, San Francisco, California, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2012.

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18

Morkoç, Hadis. Gallium nitride materials and devices III: 21-24 January 2008, San Jose, California, USA. Edited by Society of Photo-optical Instrumentation Engineers. Bellingham, Wash: SPIE, 2008.

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19

Morkoç, Hadis. Gallium nitride materials and devices IV: 26-29 January 2009, San Jose, California, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2009.

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20

Chyi, Jen-Inn. Gallium nitride materials and devices V: 25-28 January 2010, San Francisco, California, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2010.

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21

Rogach, Andrey L., ed. Semiconductor Nanocrystal Quantum Dots. Vienna: Springer Vienna, 2008. http://dx.doi.org/10.1007/978-3-211-75237-1.

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22

Michler, Peter, ed. Single Semiconductor Quantum Dots. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-540-87446-1.

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23

Credi, Alberto, ed. Photoactive Semiconductor Nanocrystal Quantum Dots. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-51192-4.

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24

Klimov, Victor I. Nanocrystal quantum dots. 2nd ed. Boca Raton: Taylor & Francis, 2010.

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25

Quantum wells, wires, and dots: Theoretical and computational physics of semiconductor nanostructures. 2nd ed. Hoboken, NJ: Wiley, 2005.

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26

Nanoparticles and Quantum Dots. CRC, 2010.

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27

E, Borovitskaya, and Shur Michael, eds. Quantum dots. River Edge, N.J: World Scientific, 2002.

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28

Quantum Dots. Elsevier Science, 1999.

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29

Michler, Peter. Single Semiconductor Quantum Dots. Springer, 2010.

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30

Single Semiconductor Quantum Dots. Springer, 2009.

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31

Moss, Steven C., Daryush Ila, Howard W. H. Lee, and David J. Norris. Semiconductor Quantum Dots: Volume 571. University of Cambridge ESOL Examinations, 2014.

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32

A, Ling Peter, ed. Quantum dots: New research. New York: Nova Science Publishers, 2006.

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33

M, Ustinov Victor, ed. Quantum dot lasers. Oxford: Oxford University Press, 2003.

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34

Pearsall, Tom. Quantum Semiconductor Devices and Technologies. Springer, 2014.

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35

Quantum Semiconductor Devices and Technologies. Springer, 2000.

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36

Mitsuru, Sugawara, ed. Self-assembled InGaAs/As quantum dots. aSan Diego: Academic Press, 1999.

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37

Fausto, Rossi, ed. Semiconductor macroatoms: Basic physics and quantum-device applications. London: Imperial College Press, 2005.

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38

Rossi, Fausto. Semiconductor Macroatoms: Basic Physics And Quantum-device Applications. Imperial College Press, 2005.

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39

(Editor), E. Borovitskaya, and Michael Shur (Editor), eds. Quantum Dots (Selected Topics in Electronics and Systems, Vol. 25). World Scientific Publishing Company, 2002.

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40

Semiconductor Quantum Dots: Symposium Held April 5-8, 1999, San Francisco, California, U.S.A (Materials Research Society Symposium Proceedings). Materials Research Society, 2000.

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41

Ustinov, Victor M., Alexey E. Zhukov, Anton Y. Egorov, and Nikolai A. Maleev. Quantum Dot Lasers (Series on Semiconductor Science and Technology, 11). Oxford University Press, USA, 2003.

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42

(Editor), Rosa Leon, Richard Noetzel (Editor), Simon Fafard (Editor), and Diane Huffaker (Editor), eds. Semiconductor Quantum Dots II: Symposium Held November 27-30, 2000, Boston, Massachusetts, U.S.A (Materials Research Society Symposia Proceedings, V. 642.). Materials Research Society, 2001.

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43

(Editor), Garnett W. Bryant, and Glenn S. Solomon (Editor), eds. Optics of Quantum Dots and Wires (Artech House Solid-State Technology Library). Artech House Publishers, 2004.

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44

(Editor), T. Yao, and J. C. Woo (Editor), eds. Physics and Applications of Semiconductor Quantum Structures. Taylor & Francis, 2001.

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45

Semiconductor Nanomaterials. Wiley-VCH Verlag GmbH, 2010.

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46

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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47

(Editor), V. Stefan, and N. G. Basov (Editor), eds. Semiconductor Science and Technology, Volume 2: Quantum Dots and Quantum Wells (Stefan University Press Series on Frontiers in Science and Technology) ... on Frontiers in Science and Technology). 2nd ed. Stefan Univ Pr, 1999.

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48

Li, Jing, and Xiao-Ying Huang. Nanostructured crystals: An unprecedented class of hybrid semiconductors exhibiting structure-induced quantum confinement effect and systematically tunable properties. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.16.

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This article describes the structure-induced quantum confinement effect in nanostructured crystals, a unique class of hybrid semiconductors that incorporate organic and inorganic components into a single-crystal lattice via covalent (coordinative) bonds to form extended one-, two- and three-dimensional network structures. These structures are comprised of subnanometer-sized II-VI semiconductor segments (inorganic component) and amine molecules (organic component) arranged into perfectly ordered arrays. The article first provides an overview of II-VI and III-V semiconductors, II-VI colloidal quantum dots, inorganic-organic hybrid materials before discussing the design and synthesis of I-VI-based inorganic-organic hybrid nanostructures. It also considers the crystal structures, quantum confinement effect, bandgaps, and optical properties, thermal properties, thermal expansion behavior of nanostructured crystals.
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49

(Editor), Mitsuru Sugawara, Robert K. Willardson (Series Editor), and Eicke R. Weber (Series Editor), eds. Self-Assembled Ingaas/Gaas Quant Umdots (Semiconductors and Semimetals). Academic Press, 1999.

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50

Triberis, Georgios P. The Physics of Low-Dimensional Structures: From Quantum Wells to DNA and Artificial Atoms. Nova Science Pub Inc, 2006.

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