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1

Masliyah, Jacob H. Electrokinetic and colloid transport phenomena. J. Wiley, 2006.

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2

Electrokinetic and colloid transport phenomena. Wiley-Interscience, 2006.

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3

Electron transport in nanostructures and mesoscopic devices. ISTE ; Hoboken, NJ : Wiley, 2008.

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4

Cisowski, Jan. Niektóre zjawiska transportu elektronowego w półprzewodnikach typu II₃--V₂. Zakład Narodowy im. 0ssolińskich, 1989.

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5

Scrosati, Bruno. Fast ion transport in solids. Springer, 1993.

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6

International, Conference on Electrical Transport and Optical Properties of Inhomogeneous Media (6th 2002 Snowbird Utah). Proceedings of the Sixth International Conference on Electrical Transport and Optical Properties of Inhomogeneous Media, ETOPIM6, held in Snowbird, UT, USA, 15-19 July 2002. Elsevier, 2003.

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7

Janez, Bonc̆a, and Kruchinin Sergei, eds. Electron transport in nanosystems. Springer, 2008.

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8

NATO Advanced Research Workshop on Electron Transport in Nanosystems (2007 I︠A︡lta, Ukraine). Electron transport in nanosystems. Springer, 2008.

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9

Kusz, Bogusław. Nanostruktury metalicznego bizmutu w redukowanych szkłach bizmutowo-germanianowych i bizmutowo-krzemianowych: Wytwarzanie, struktura i transport nośników ładunków. Wydawn. Politechniki Gdańskiej, 2004.

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10

Lipson, R. H. (Robert Henry), 1955- and Singh, M. R. (Mahi R.), eds. Transport and optical properties of nanomaterials: Proceedings of the international conference ICTOPON--2009, Allahabad, India, 5-8 January 2009. American Institute of Physics, 2009.

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11

Yovcheva, T. A. Corona charging of synthetic polymer films. Nova Science Publishers, 2009.

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12

Vladislav, Cápek, ed. Organic molecular crystals: Interaction, localization, and transport phenomena. American Institute of Physics, 1994.

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13

Müller, Kerstin Andrea. Optimization of tracer experiments to characterize transport properties in heterogeneous aquifers using non-invasive measurement techniques. Forschungszentrum, Zentralbibliothek, 2006.

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14

Siliņš, E. Organic molecular crystals: Interaction,localization, and transport phenomena. American Institute of Physics, 1994.

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15

Linjun, Wang, Song Chenchen, and SpringerLink (Online service), eds. Theory of Charge Transport in Carbon Electronic Materials. Springer Berlin Heidelberg, 2012.

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16

Risø International Symposium on Metallurgy and Materials Science (6th 1985). Transport-structure relations in fast ion and mixed conductors: Proceedings of the 6th Risø International Symposium on Metallurgy and Materials Science, 9-13 September 1985. Edited by Poulsen F. W and Forsøgsanlæg Risø. Risø National Laboratory, 1985.

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17

Fujita, T., G. Oomi, and H. Fujii. Transport and thermal properties of f-electron systems. Springer Science, 1993.

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18

J, Ossau Wolfgang, and Suris R. A, eds. Optical properties of 2D systems with interacting electrons. Kluwer Academic Publishers, 2002.

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19

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

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20

Zhang, Jinsong. Transport Studies of the Electrical, Magnetic and Thermoelectric properties of Topological Insulator Thin Films. Springer Berlin Heidelberg, 2016. http://dx.doi.org/10.1007/978-3-662-49927-6.

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21

Hiroshima Workshop on Transport and Thermal Properties of Advanced Materials (2nd 2002 Hiroshima University). Proceedings of the Second Hiroshima Workshop on Transport and Thermal Properties of Advanced Materials: T2PAM, held in Higashi-Hiroshima, Japan, 16-19 August 2002. Edited by Oguchi T, Sera M, and Takabatake T. North-Holland, 2003.

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22

Emeleus, Charles John. Electrical transport properties of two-dimensional hole gases in the Si/Si[subscript 1-x]Ge[subscript x] system. typescript, 1993.

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23

Janz, George J. Thermodynamic and transport properties for molten salts: Correlation equations for critically evaluated density, surface tension, electrical conductance, and viscosity data. published by the American Chemical Society and the American Institute of Physics for the National Bureau of Standards, 1988.

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24

International Conference on Electrical Transport and Optical Properties of Inhomogeneous Media (3rd 1993 Guanajuato, Mexico). ETOPIM3: Proceedings of the third International Conference on Electrical Transport and Optical Properties of Inhomogeneous Media, Guanajuato, Mexico, 9-13 August 1993. Edited by Mochán W. Luis and Barrera Rubén G. North-Holland, 1994.

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25

Paris), International Conference on Electrical Transport and Optical Properties of Inhomogeneous Media (2nd 1988. ETOPIM 2: Proceedings of the second International Conference on Electrical Transport and Optical Properties of Inhomogeneous Media, 29 August - 2 September 1988, Paris, France. North-Holland, 1989.

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26

Dewey, James Michael. Investigation of minority electron transport in silicon. 1993.

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27

Masliyah, Jacob H., and Subir Bhattacharjee. Electrokinetic and Colloid Transport Phenomena. Wiley & Sons, Incorporated, John, 2006.

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28

Masliyah, Jacob H., and Subir Bhattacharjee. Electrokinetic and Colloid Transport Phenomena. Wiley & Sons, Incorporated, John, 2008.

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29

I, Lazarev P., Nauchnyĭ t͡s︡entr biologicheskikh issledovaniĭ (Akademii͡a︡ nauk SSSR), and Akademii͡a︡ nauk SSSR. Nauchno-issledovatelʹskiĭ vychislitelʹnyĭ t͡s︡entr (Pushchino, Moscow, Russia), eds. Biomolekuli͡a︡rnai͡a︡ ėlektronika i problema samosborki nadmolekuli͡a︡rnykh struktur: Sbornik nauchnykh trudov. Nauch. t͡s︡entr biologicheskikh issl. AN SSSR v Pushchine, 1987.

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30

Gunther, Klaus, and Rainer Radtke. Electric Properties of Weakly Nonideal Plasmas (Exs (Experientia Supplementum)). Birkhauser, 1985.

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31

Dugdale, J. S. Electrical Properties of Metals and Alloys. Dover Publications, Incorporated, 2016.

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32

Superconductivity In Nanowires Fabrication And Quantum Transport. Wiley-VCH Verlag GmbH, 2012.

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33

M, Spasic Aleksandar, and Hsu Jyh-Ping 1955-, eds. Finely dispersed particles: Micro-, nano-, and atto-engineering. CRC/Taylor & Francis, 2006.

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34

(Editor), Aleksandar M. Spasic, and Jyh-Ping Hsu (Editor), eds. Finely Dispersed Particles: Micro-, Nano-, and Atto-Engineering (Surfactant Science). CRC, 2005.

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35

Ouisse, Thierry. Electron Transport in Nanostructures and Mesoscopic Devices: An Introduction. Wiley & Sons, Incorporated, John, 2013.

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36

Ouisse, Thierry. Electron Transport in Nanostructures and Mesoscopic Devices: An Introduction. Wiley & Sons, Incorporated, John, 2010.

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37

Ouisse, Thierry. Electron Transport in Nanostructures and Mesoscopic Devices: An Introduction. Wiley & Sons, Incorporated, John, 2013.

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38

Bruno, Scrosati, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Research Workshop on Fast Ion Transport in Solids (1992 : Belgirate, Italy), eds. Fast ion transport in solids. Kluwer Academic, 1993.

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39

(Editor), Igor V. Lerner, Boris L. Althsuler (Editor), Vladimir I. Fal'ko (Editor), and Thierry Giamarchi (Editor), eds. Strongly Correlated Fermions and Bosons in Low-Dimensional Disordered Systems (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2002.

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40

Sergei, Baranovski, ed. Charge transport in disordered solids with applications in electronics. Wiley, 2006.

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41

Baranovski, Sergei. Charge Transport in Disordered Solids with Applications in Electronics. Wiley & Sons, Incorporated, John, 2006.

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42

Fractional Kinetics In Solids Anomalous Charge Transport In Semiconductors Dielectrics And Nanosystems. World Scientific Publishing Company, 2011.

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43

Könenkamp, Rolf. Photoelectric Properties and Applications of Low-Mobility Semiconductors. Springer, 2000.

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44

Ying-quan, Peng, ed. Charge carrier transport in organic semiconductor thin film devices. Nova Science Publishers, 2008.

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45

Silinsh, Edgar A., and Vladislav Capek. Organic Molecular Crystals: Interacton Localization, and Transport Phenomena. American Institute of Physics, 1997.

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46

Shuai, Zhigang, Linjun Wang, and Chenchen Song. Theory of Charge Transport in Carbon Electronic Materials. Springer, 2012.

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47

Shuai, Zhigang, Linjun Wang, and Chenchen Song. Theory of Charge Transport in Carbon Electronic Materials. Springer, 2012.

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48

Transport-structure relations in fast ion and mixed conductors: Proceedings of the 6th Risø International Symposium on Metallurgy and Materials Science, 9-13 September 1985. Risø National Laboratory, 1985.

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49

Tiwari, Sandip. Phase transitions and their devices. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0004.

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Phase transitions as a collective response of an ensemble, with appearance of unique stable properties spontaneously, is critical to a variety of devices: electronic, magnetic, optical, and their coupled forms. This chapter starts with a discussion of broken symmetry and its manifestation in the property changes in thermodynamic phase transition and the Landau mean-field articulation. It then follows it with an exploration of different phenomena and their use in devices. The first is ferroelectricity—spontaneous electric polarization—and its use in ferroelectric memories. Electron correlation
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50

Kamarás, Katalin, and Àron Pekker. Identification and separation of metallic and semiconducting carbon nanotubes. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.4.

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This article describes the identification and separation of metallic and semiconducting carbon nanotubes according to their electric properties. It first provides an overview of the electronic structure of nanotubes, focusing on how their metallic and semiconducting properties arise. It then considers the most widely used characterization techniques used in determining metallic or semiconducting behavior, including Raman spectroscopy and photoluminescence measurements. It also discusses specific chirality-selective growth techniques, physical postgrowth selection methods, enrichment by chirali
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