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1

van Dam, Wim, Vivien M. Kendon, and Simone Severini, eds. Theory of Quantum Computation, Communication, and Cryptography. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-18073-6.

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2

Bacon, Dave, Miguel Martin-Delgado, and Martin Roetteler, eds. Theory of Quantum Computation, Communication, and Cryptography. Berlin, Heidelberg: Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-54429-3.

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3

Iwama, Kazuo, Yasuhito Kawano, and Mio Murao, eds. Theory of Quantum Computation, Communication, and Cryptography. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-35656-8.

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4

Kawano, Yasuhito, and Michele Mosca, eds. Theory of Quantum Computation, Communication, and Cryptography. Berlin, Heidelberg: Springer Berlin Heidelberg, 2008. http://dx.doi.org/10.1007/978-3-540-89304-2.

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5

Childs, Andrew, and Michele Mosca, eds. Theory of Quantum Computation, Communication, and Cryptography. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-642-10698-9.

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6

service), SpringerLink (Online, ed. Quantum private communication. Beijing: Higher Education Press, 2010.

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7

NATO Advanced Research Workshop on Quantum Communication and Security (2006 Gdańsk, Poland). Quantum communication and security. Amstderdam, Netherlands: IOS Press, 2007.

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8

NATO Advanced Research Workshop on Quantum Cryptography and Computing: Theory and Implementations (2009 Gdańsk, Poland). Quantum cryptography and computing--theory and implementation. Amstderdam, Netherlands: IOS Press, 2010.

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9

TQC 2009 (2009 Waterloo, Ont.). Theory of quantum computation, communication and cryptography: 4th workshop, TQC 2009, Waterloo, Canada, May 11-13 : revised selected papers. Berlin: Springer, 2009.

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10

Yasuhito, Kawano, and Mosca Michele 1971-, eds. Theory of quantum computation, communication, and cryptography: Third workshop, TQC 2008, Tokyo, Japan, January 30 - February 1, 2008 : revised selected papers. Berlin: Springer, 2008.

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11

TQC 2008 (2008 Tokyo, Japan). Theory of quantum computation, communication, and cryptography: Third workshop, TQC 2008, Tokyo, Japan, January 30 - February 1, 2008 : revised selected papers. Berlin: Springer, 2008.

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12

TQC 2008 (2008 Tokyo, Japan). Theory of quantum computation, communication, and cryptography: Third workshop, TQC 2008, Tokyo, Japan, January 30 - February 1, 2008 : revised selected papers. Berlin: Springer, 2008.

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13

Shixiong, Zhu, and Zhu Fuchen, eds. Liang zi bao mi tong xin yin lun. Beijing Shi: Beijing li gong da xue chu ban she ... [et al.], 2010.

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14

Arakawa, Yasuhiko. Quantum communications realized II: 28-29 January 2009, San Jose, California, United States. Edited by SPIE (Society). Bellingham, Wash: SPIE, 2009.

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15

Iwama, Kazuo. Theory of Quantum Computation, Communication, and Cryptography: 7th Conference, TQC 2012, Tokyo, Japan, May 17-19, 2012, Revised Selected Papers. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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16

Wim, Van Dam. Theory of Quantum Computation, Communication, and Cryptography: 5th Conference, TQC 2010, Leeds, UK, April 13-15, 2010, Revised Selected Papers. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011.

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17

Singh, Simon. The code book: The science of secrecy from ancient Egypt to quantum cryptography. London: Fourth Estate, 1999.

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18

Singh, Simon. The code book: The evolution of secrecy from Mary, Queen of Scots, to quantum cryptography. New York: Doubleday, 1999.

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19

Singh, Simon. The Code Book: The evolution of secrecy from Mary, Queen of Scots, to quantum cryptography. New York: Doubleday, 1999.

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20

V, Sergienko Alexander, ed. Quantum communications and cryptography. Boca Raton, FL: Taylor & Francis, 2005.

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21

Quantum communications and cryptography. Boca Raton, FL: CRC/Taylor & Francis, 2005.

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22

Quantum Information Theory. Cambridge, 2013.

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23

Quantum Information Theory. University of Cambridge ESOL Examinations, 2017.

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24

Yasuhiko, Arakawa, Sasaki Masahide, Sotobayashi Hideyuki, and SPIE (Society), eds. Quantum communications realized: 10-12 September 2007, Boston, Massachusetts, USA. Bellingham, Wash: SPIE, 2007.

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25

(Editor), Jean-Pierre Gazeau, Jaroslav Nesetril (Editor), and Branislav Rovan (Editor), eds. Physics and Theoretical Computer Science: From Numbers and Languages to (Quantum) Cryptography - Volume 7 NATO Security through Science Series: Information ... - Information and Communication Security). IOS Press, 2007.

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26

Dam, Wim van, Simone Severini, and Vivien M. Kendon. Theory of Quantum Computation, Communication and Cryptography: 5th Conference, TQC 2010, Leeds, UK, April 13-15, 2010, Revised Selected Papers. Springer, 2011.

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27

Iwama, Kazuo, Yasuhito Kawano, and Mio Murao. Theory of Quantum Computation, Communication, and Cryptography: 7th Conference, TQC 2012, Tokyo, Japan, May 17-19, 2012, Revised Selected Papers. Springer, 2013.

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28

Iwama, Kazuo, Yasuhito Kawano, and Mio Murao. Theory of Quantum Computation, Communication, and Cryptography: 7th Conference, TQC 2012, Tokyo, Japan, May 17-19, 2012, Revised Selected Papers. Springer, 2013.

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29

Sergienko, Alexander, ed. Quantum Communications and Cryptography. CRC Press, 2005. http://dx.doi.org/10.1201/9781420026603.

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30

Tiwari, Sandip. Phenomena and devices at the quantum scale and the mesoscale. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0003.

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Abstract:
Unique nanoscale phenomena arise in quantum and mesoscale properties and there are additional intriguing twists from effects that are classical in origin. In this chapter, these are brought forth through an exploration of quantum computation with the important notions of superposition, entanglement, non-locality, cryptography and secure communication. The quantum mesoscale and implications of nonlocality of potential are discussed through Aharonov-Bohm effect, the quantum Hall effect in its various forms including spin, and these are unified through a topological discussion. Single electron effect as a classical phenomenon with Coulomb blockade including in multiple dot systems where charge stability diagrams may be drawn as phase diagram is discussed, and is also extended to explore the even-odd and Kondo consequences for quantum-dot transport. This brings up the self-energy discussion important to nanoscale device understanding.
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31

Buchmann, Johannes, Daniel J. Bernstein, and Erik Dahmen. Post-Quantum Cryptography. Springer, 2008.

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32

Buchmann, Johannes, Daniel J. Bernstein, and Erik Dahmen. Post-Quantum Cryptography. Springer, 2010.

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33

Singh, Simon. Code Book: The Science of Secrecy from Ancient Egypt to Quantum Cryptography. Diane Pub Co, 1999.

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34

Singh, Simon. The Code Book: The Science of Secrecy from Ancient Egypt to Quantum Cryptography. Publisher, 2009.

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35

Singh, Simon. The Code Book: The Science of Secrecy from Ancient Egypt to Quantum Cryptography. Anchor, 2000.

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36

Buchmann, Johannes, and Jintai Ding. Post-Quantum Cryptography: Second International Workshop, PQCrypto 2008 Cincinnati, OH, USA October 17-19, 2008 Proceedings. Springer, 2008.

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