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1

Ferraro, John R. Introduction to synthetic electrical conductors. Orlando: Academic Press, 1987.

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2

Jakubiuk, Kazimierz. Electrical explosion and implosion of conductors. Gdańsk: Wydawn. Politechniki Gdańskiej, 2000.

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3

Electrical materials. 2nd ed. Clifton Park, NY: Delmar, Cengage Learning, 2012.

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4

Zachariason, Rob. Electrical materials. Clifton Park, NY: Thomson Delmar Learning, 2007.

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5

Blake-Coleman, B. C. Copper wire and electrical conductors: The shaping of a technology. Chur [Switzerland]: Harwood Academic, 1992.

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6

Lenk, John D. Simplified electrical wiring design handbook: Basics, conductors, raceways, wireways, busways ... Englewood Cliffs, N.J: Prentice Hall, 1993.

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7

Morgan, Vincent T. Thermal behaviour of electrical conductors: Steady, dynamic, and fault-current ratings. Taunton, Somerset, England: Research Studies Press, 1991.

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8

Jarzembski, M. A. Low-pressure electrical discharge experiment to simulate high-altitude lightning above thunderclouds. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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9

Jarzembski, M. A. Low-pressure electrical discharge experiment to simulate high-altitude lightning above thunderclouds. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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10

Jarzembski, M. A. Low-pressure electrical discharge experiment to simulate high-altitude lightning above thunderclouds. Marshall Space Flight Center, Alabama: Marshall Space Flight Center, 1995.

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11

Jarzembski, M. A. Low-pressure electrical discharge experiment to simulate high-altitude lightning above thunderclouds. MSFC, Ala: National Aeronautics and Space Administration, Marshall Space Flight Center, 1995.

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12

Bryan, Kurt. Reconstruction of multiple cracks from experimental electrostatic boundary measurements. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1994.

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13

Bryan, Kurt. Reconstruction of multiple cracks from experimental electrostatic boundary measurements. Hampton, Va: Institute for Computer Applications in Science and Engineering, 1993.

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14

Royal Society (Great Britain). Discussion Meeting. Electrical and magnetic properties of low-dimensional solids: Proceedings of a Royal Society discussion meeting held on 31 May and 1 June 1984. London: Royal Society, 1985.

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15

Certain electrical conductor aluminum redraw rod from Venezuela: Determination of the commission in investigation no. 701-TA-287 (preliminary) under the Tariff Act of 1930, together with the information obtained in the investigation, determination of the commission in investigation no. 731-TA-378 (preliminary) under the Tariff Act of 1930, together with the information obtained in the investigations. Washington, DC: U.S. International Trade Commission, 1987.

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16

United States International Trade Commission. Certain electrical conductor aluminum redraw rod from Venezuela: Determination of the commission in investigation no. 701-TA-287 (final) under the Tariff Act of 1930, together with the information obtained in the investigation : determination of the commission in investigation no. 731-TA-378 (final) under the Tariff Act of 1930, together with the information obtained in the investigation. Washington, DC: U.S. International Trade Commission, 1988.

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17

Practical calculations for electricians: Step-by-step calculations & formulas for : branch circuits, conductors, boxes & raceways, voltage drop, AC motors, dwelling loads, commercial loads : based on the 2005 National Electrical Code. Carson City, Nev: Nevada Tech Publishers, 2006.

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18

Riley, Peter D. Circuits & conductors. London: Franklin Watts, 2006.

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19

Riley, Peter D. Circuits & conductors. London: Franklin Watts, 2011.

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20

International Semiconductor Conference (23rd 2000 Sinaia, Romania). 2000 International Semiconductor Conference: CAS 2000 proceedings, 23rd edition, October 10-14, 2000, Sinaia, Romania. Piscataway, N.J: IEEE Service Center, 2000.

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21

IEEE Semiconductor Thermal Measurement and Management Symposium (12th 1996 Austin, Tex.). Twelfth Annual IEEE Semiconductor Thermal Measurement and Management Symposium: March 5-7, 1996, Four Seasons Hotel, Austin, TX, USA. New York, NY, U.S.A: IEEE, 1996.

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22

International Conference on Simulation of Semiconductor Processes and Devices (2000 Seattle, Wash.). 2000 International Conference on Simulation of Semiconductor Proceses and Devices: SISPAD 2000 : Seattle, Washington USA, 6-8 September 2000. Piscataway, N.J: Institute of Electrical and Electronics Engineers, Inc., 2000.

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23

IEEE Semiconductor Thermal Measurement and Management Symposium (12th 1996 Austin, Tex.). Twelfth Annual IEEE Semiconductor Thermal Measurement and Management Symposium: March 5-7, 1996, Four Seasons Hotel, Austin, TX, USA. New York, NY, U.S.A: IEEE, 1996.

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24

Spilsbury, Louise. Circuits and conductors. London: Evans, 2007.

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25

Royston, Angela. Conductors and insulators. Chicago, Ill: Heinemann Library, 2008.

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26

Royston, Angela. Conductors and insulators. Chicago, Ill: Heinemann Library, 2008.

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27

Symposium, IEEE Semiconductor Thermal Measurement and Management. Sixteenth annual IEEE Semiconductor Thermal Measurement and Management Symposium: March 21-23, 2000, DoubleTree Hotel, San Jose, CA, USA. Piscataway, New Jersey: IEEE, 2000.

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28

Oxlade, Chris. Conductors and insulators. London: Raintree, 2013.

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29

J, Rymaszewski Eugene, ed. Thin-film capacitors for packaged electronics. Norwell, MA: Kluwer Academic Publishers, 2004.

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30

Kagoshima, Seiichi. One-Dimensional Conductors. Berlin, Heidelberg: Springer Berlin Heidelberg, 1988.

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31

Oxlade, Chris. Conductors and insulators. Chicago, Ill: Heinemann Library, 2012.

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32

Vike, Corey W. Baldy's quick reference: Maximum conductor combinations 8, 10, 12 AWG conductors in 1/2", 3/4", 1" conduits, 40% conduit fill. 2nd ed. [United States]: Vike Publications, 2003.

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33

IEEE Gallium Arsenide Integrated Circuit Symposium (22nd 2000 Seattle, Washington). GaAs IC Symposium: 22nd annual IEEE Gallium Arsenide Integrated Circuit Symposium : technical digest 2000 : Seattle, Washington, November 5-8, 2000. Piscataway, New Jersey: IEEE, 2000.

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34

What are insulators and conductors? New York: Crabtree Pub., 2012.

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35

IEEE/SEMI Advanced Semiconductor Manufacturing Conference and Workshop (6th 1995 Cambridge, Mass.). IEEE/SEMI 1995 Advanced Semiconductor Manufacturing Conference and Workshop: Theme, "Semiconductor manufacturing : economic solutions for the 21st century" : ASMC 95 proceedings, November 13-15, 1995, Cambridge, Massachusetts. New York: Institute of Electrical and Electronics Engineers, 1995.

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36

International Symposium on Power Semiconductor Devices & ICs (8th 1996 Maui, Hawaii). ISPSD '96 proceedings: The 8th International Symposium on Power Semiconductor Devices & ICs, May 20-23, 1996, Maui, Hawaii. Piscataway, N.J: IEEE Service Center [distributor], 1996.

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37

IEEE/SEMI, Advanced Semiconductor Manufacturing Conference and Workshop (9th 1998 Boston Massachusetts). 1998 IEEE/SEMI Advanced Semiconductor Manufacturing Conference and Workshop: Theme--Semiconductor manufacturing: meeting the challenges of the global marketplace : ASMC 97 : proceedings : September 23-25, 1998, Boston, Massachusetts. Piscataway, New Jersey: IEEE, 1998.

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38

Orton, Harry E. Insulated Conductors (Electrical Engineering & Electronics). CRC, 2009.

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39

Aluminum electrical conductor handbook. 3rd ed. Washington, D.C: Aluminum Association, 1989.

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40

Kirczenow, George. Molecular nanowires and their properties as electrical conductors. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.4.

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This article describes the properties of molecular nanowires as electrical conductors. It begins by defining a molecular nanowire and describing a specific example of a molecular nanowire, along with the concept of molecular nanowire self-assembly. It then considers how molecular nanowires are realized in the laboratory as well as the relationships between these methodologies, the systems that are produced and some experiments being performed on them. It also looks at the different kinds of molecules, electrodes and linkers out of which molecular nanowires are being or may be constructed; the Landauer approach to electrical conduction in molecular nanowires; the principles and limitations of ab-initio and semi-empirical modelling of molecular nanowires in the context of electrical conduction; and four specific experimental systems and the extent to which their observed behavior has been understood theoretically. The article concludes with a summary of key issues for the future development of the field.
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41

Electrical Conductors (Annual Book of Astm Standards 2002). Astm Intl, 2002.

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42

Zachariason, Rob. Electrical Materials. Cengage Delmar Learning, 2007.

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43

Handbook Of Transparent Conductors. Springer, 2010.

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44

Reynolds, John R., Long Y. Chiang, Alex K.-Y. Jen, Larry R. Dalton, and Michael F. Rubner. Electrical, Optical and Magnetic Properties of Organic Solid-State Materials IV: Volume 488. University of Cambridge ESOL Examinations, 2014.

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45

Electrical Conductors (Annual Book of a S T M Standards Volume 0203). Astm Intl, 2000.

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46

Electrical Conductors (Annual Book of a S T M Standards Volume 0203). Astm Intl, 2002.

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47

Mêjasson, Patrick Gérard. The mathematical modelling of electrical and thermal acceleration factors in VLSI conductors. 1996.

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48

Electrical Conductors (Annual Book of a S T M Standards Volume 0203). Astm Intl, 1998.

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49

Electrical Conductors (Annual Book of a S T M Standards Volume 0203). Astm Intl, 1999.

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50

Electrical Conductors (Annual Book of a S T M Standards Volume 0203). Astm Intl, 2001.

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