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1

library, Wiley online, ed. Organic electronics: Structural and electronic properties of OFETs. Weinheim: Wiley-VCH, 2009.

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2

Fowlie, Jennifer. Electronic and Structural Properties of LaNiO₃-Based Heterostructures. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-15238-3.

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3

Antwerp, Advanced Study Institute on Electronic Structure Dynamics and Quantum Structural Properties of Condensed Matter (1984). Electronic structure, dynamics, and quantum structural properties of condensed matter. New York: Plenum Press, 1985.

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4

Devreese, Jozef T., and Piet Van Camp, eds. Electronic Structure, Dynamics, and Quantum Structural Properties of Condensed Matter. Boston, MA: Springer US, 1985. http://dx.doi.org/10.1007/978-1-4757-0899-8.

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5

Workshop on Structure and Electronic Properties of Amorphous Superconductor Superlattices (1988 University of Tokyo). Workshop on Structural and Electronic Properties of Amorphous Superconductor Superlattices. London: Taylor & Francis, 1989.

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6

Readman, Jennifer Elizabeth. Structural and electronic properties of metal- and metal-oxide containing zeolites. Birmingham: University of Birmingham, 2001.

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7

Hayden, Andrew Bryan. Electronic and structural properties of adsorbates on nickel and aluminium surfaces. [s.l.]: typescript, 1993.

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8

service), SpringerLink (Online, ed. Surface Magnetism: Correlation of Structural, Electronic and Chemical Properties with Magnetic Behavior. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2010.

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9

International, Winter School on Electronic Properties of Novel Materials (16th 2002 Kirchberg in Tirol Austria). Structural and electronic properties of molecular nanostructures: XVI International Winterschool on electronic properties of novel materials, Kirchberg, Tirol, Austria, 2-9 March 2002. Melville, N.Y: American Institute of Physics, 2002.

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10

International Winter School on Electronic Properties of Novel Materials (16th 2002 Kirchberg in Tirol, Austria). Structural and electronic properties of molecular nanostructures: XVI International Winterschool on electronic properties of novel materials, Kirchberg, Tirol, Austria, 2-9 March 2002. Edited by Kuzmany H. 1940-. Melville, N.Y: American Institute of Physics, 2002.

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11

International Winter School on Electronic Properties of Novel Materials (16th 2002 Kirchberg in Tirol, Austria). Structural and electronic properties of molecular nanostructures: XVI International Winterschool on Electronic Properties of Novel Materials : Kirchberg, Tirol, Austria, 2-9 March 2002. Edited by Kuzmany H. 1940-. Melville, N.Y: American Institute of Physics, 2002.

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12

Lui, Chun Hung. Investigations of the electronic, vibrational and structural properties of single and few-layer graphene. [New York, N.Y.?]: [publisher not identified], 2011.

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13

Cohen, Marvin L. Electronic structure and optical properties of semiconductors. Berlin: Springer-Verlag, 1988.

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14

R, Chelikowsky James, ed. Electronic structure and optical properties of semiconductors. 2nd ed. Berlin: Springer-Verlag, 1989.

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15

Chamberlain, J. M. Electronic Properties of Multilayers and Low-Dimensional Semiconductor Structures. Boston, MA: Springer US, 1991.

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16

NATO, Advanced Study Institute on Electronic Properties of Multilayers and Low-Dimensional Semiconductor Structures (1989 Castéra-Verduzan France). Electronic properties of multilayers and low-dimensional semiconductor structures. New York: Plenum Press, 1990.

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17

Chamberlain, J. M., Laurence Eaves, and Jean-Claude Portal, eds. Electronic Properties of Multilayers and Low-Dimensional Semiconductor Structures. Boston, MA: Springer US, 1990. http://dx.doi.org/10.1007/978-1-4684-7412-1.

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18

A, Kaplan T., and Mahanti S. D, eds. Electronic properties of solids using cluster methods. New York: Plenum Press, 1995.

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19

Antonov, Victor. Electronic structure and magneto-optical properties of solids. Dordrecht: Kluwer Academic Publishers, 2004.

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20

Bruce, Harmon, and Yaresko Alexander, eds. Electronic structure and magneto-optical properties of solids. Dordrecht: Kluwer Academic Publishers, 2004.

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21

Kobayashi, Tatsuya. Study of Electronic Properties of 122 Iron Pnictide Through Structural, Carrier-Doping, and Impurity-Scattering Effects. Singapore: Springer Singapore, 2017. http://dx.doi.org/10.1007/978-981-10-4475-5.

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22

V, Kuznetsov Alex, ed. Electronic states and optical transitions in semiconductor heterostructures. New York: Springer, 1999.

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23

1950-, Wilson S., ed. Atomic and molecular properties. New York: Plenum Press, 1992.

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24

1957-, Vollmer Michael, ed. Optical properties of metal clusters. Berlin: Springer, 1995.

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25

The electronic structure and chemistry of solids. Oxford [Oxfordshire]: Oxford University Press, 1987.

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26

1945-, Gonis Antonios, Stocks G. M. 1943-, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Study Institute on Surfaces and Interfaces (1991 : Porto Karras, Chalkidikē, Greece), eds. Equilibrium structure and properties of surfaces and interfaces. New York: Plenum, 1992.

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27

Morigaki, Kazuo, Koichi Shimakawa, and Sándor Kugler. Amorphous Semiconductors: Structural, Optical, and Electronic Properties. Wiley & Sons, Incorporated, John, 2016.

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28

Amorphous Semiconductors: Structural, Optical, and Electronic Properties. Wiley, 2017.

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29

Morigaki, Kazuo, Koichi Shimakawa, and Sándor Kugler. Amorphous Semiconductors: Structural, Optical and Electronic Properties. Wiley & Sons, Limited, John, 2016.

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30

Morigaki, Kazuo, Koichi Shimakawa, and Sándor Kugler. Amorphous Semiconductors: Structural, Optical, and Electronic Properties. Wiley & Sons, Incorporated, John, 2017.

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31

Morigaki, Kazuo, Koichi Shimakawa, and Sándor Kugler. Amorphous Semiconductors: Structural, Optical, and Electronic Properties. Wiley & Sons, Incorporated, John, 2016.

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32

Fowlie, Jennifer. Electronic and Structural Properties of LaNiO₃-Based Heterostructures. Springer, 2019.

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33

Fowlie, Jennifer. Electronic and Structural Properties of LaNiO₃-Based Heterostructures. Springer, 2020.

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34

Bland, J. A. C., and Bretislav Heinrich. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer London, Limited, 2006.

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35

Bland, J. A. C. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer-Verlag Telos, 1994.

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36

J.A.C. Bland (Editor) and Bretislav Heinrich (Editor), eds. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer, 2005.

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37

J.Anthony C. Bland (Editor) and Bretislav Heinrich (Editor), eds. Ultrathin Magnetic Structures I: An Introduction to the Electronic, Magnetic and Structural Properties. Springer, 1994.

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38

Electronic Structure, Dynamics, and Quantum Structural Properties of Condensed Matter. Springer, 1985.

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39

Devreese, Jozef T., and Piet Van Camp. Electronic Structure, Dynamics, and Quantum Structural Properties of Condensed Matter. Springer, 2014.

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40

Devreese, Jozef T., and Piet Van Camp. Electronic Structure, Dynamics, and Quantum Structural Properties of Condensed Matter. Springer, 2013.

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41

Naaman, Ron, and Leeor Kronik. Two-Dimensional Arrangements of Organic Molecules: Structural and Electronic Properties. Wiley & Sons, Limited, John, 2008.

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42

Peng, Songshi S. Electronic structures and magnetic properties of iron in various magnetic states and structural phases. 1991.

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43

Andriotis, A. N., R. M. Sheetz, E. Richter, and M. Menon. Structural, electronic, magnetic, and transport properties of carbon-fullerene-based polymers. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.21.

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This article discusses the structural, electronic, magnetic, and transport properties of carbon-fullerene-based polymers. In particular, it examines the defect-induced ferromagnetism of the C60-based polymers and its analog in the case of non-traditional inorganic materials. It first reviews the computational methods currently used in the literature, highlighting the pros and cons of each one of them. It then considers the defects associated with the ferromagnetism of the C60-based polymers, namely carbon vacancies, the 2 + 2 cycloaddition bonds and impurity atoms, and their effect on the electronic structure. It also evaluates the effect of codoping and goes on to describe the electronic, magnetic and transport properties of the rhombohedral C60-polymer. Finally, it looks at the origin of magnetic coupling among the magnetic moments in the rhombohedral C60-polymer and provides further evidence for the analogy between the magnetism of the rhombohedral C60-polymer and zinc oxide.
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44

Structural and Electronic Properties of Molecular Nanostructures: XVI International Winterschool on Electronic Properties of Novel Materials (AIP Conference Proceedings). Springer-Verlag, 2003.

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45

Zahn, Dietrich R. T., Reinhard Scholz, and Thorsten U. Kampen. Organic Molecular Semiconductors: Structural, Optical, and Electronic Properties of Thin Films. Wiley & Sons, Incorporated, John, 2004.

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46

Philosophical magazine: Physics of condensed matter, structural, electronic, optical, and magnetic properties. London: Taylor & Francis, 1986.

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47

Getzlaff, Mathias. Surface Magnetism: Correlation of Structural, Electronic and Chemical Properties with Magnetic Behavior. Springer Berlin / Heidelberg, 2012.

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48

Characterization of oxygen effects on the electronic and structural properties of polyacetylenes. 1985.

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49

Electronic and Optoelectronic Properties of Semiconductor Structures. Cambridge University Press, 2007.

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50

Singh, Jasprit. Electronic and Optoelectronic Properties of Semiconductor Structures. Cambridge University Press, 2012.

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