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1

Mills, Randell L. The grand unified theory. Ephrata, Pennsylvania: Science Press, 1990.

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2

King, Moray B. Quest for zero point energy: Engineering principles for "free energy" inventions. Kempton, Ill: Adventures Unlimited, 2001.

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3

Unification of spacetime, the forces, matter, and energy. Ephrata, Pennsylvania: Science Press, 1992.

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4

Mezhdunarodnyĭ simpozium "Neodnorodnye ėlektronnye sostoi͡anii͡a" (5th 1995? Novosibirsk, Russia?). Pi͡atyĭ Mezhdunarodnyĭ simpozium "Neodnorodnye ėlektronnye sostoi͡anii͡a": Tezisy dokladov, 12-14 senti͡abri͡a. Novosibirsk: In-t neorganicheskoĭ khimii Sibirskogo otd-nie RAN, 1995.

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5

A, Boi͡arskiĭ L., Nauchnyĭ sovet po probleme "Fizika nizkikh temperatur" (Akademii͡a nauk SSSR), and Institut neorganicheskoĭ khimii (Akademii͡a nauk SSSR), eds. Tretiĭ Vsesoi͡uznyĭ simpozium "Neodnorodnye ėlektronnye sostoi͡anii͡a": Tezisy dokladov, 21-23 noi͡abri͡a. Novosibirsk: [s.n.], 1989.

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6

A, Boi͡arskiĭ L., Nauchnyĭ sovet po probleme "Fizika nizkikh temperatur" (Akademii͡a nauk SSSR), and Institut neorganicheskoĭ khimii (Akademii͡a nauk SSSR), eds. Chetvertyĭ Vsesoi͡uznyĭ simpozium "Neodnorodnye ėlektronnye sostoi͡anii͡a": Tezisy dokladov, 4-6 marta. Novosibirsk: In-t neorganicheskoĭ khimii SO AN SSSR, 1991.

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7

Dawson, Donald Andrew. Large deviations, free energy functional and quasi-potential for a mean field model of interacting diffusions. Providence, R.I., USA: American Mathematical Society, 1989.

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8

R, Haydock, Inglesfield J. E. 1945-, and Pendry J. B, eds. Bonding and structure of solids: Proceedings of a Royal Society Discussion Meeting, held on 20 and 21 September 1990. London: The Society, 1991.

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9

F, Mott N. Electronic processes in non-crystalline materials. 2nd ed. Oxford: Clarendon Press, 2012.

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10

Conduction in non-crystalline materials. Oxford: Clarendon Press, 1987.

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11

F, Mott N. Conduction in non-crystalline materials. 2nd ed. Oxford: Clarendon Press, 1993.

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12

1930-, Kanamori J., and Kotani A. 1941-, eds. Core-level spectroscopy in condensed systems: Proceedings of the Tenth Taniguchi International Symposium, Kashikojima, Japan, October 19-23, 1987. Berlin: Springer-Verlag, 1988.

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13

D, Walsh, ed. Electrical properties of materials. 7th ed. Oxford: Oxford University Press, 2004.

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14

Solymar, L. Electrical properties of materials. 6th ed. Oxford: Oxford University Press, 1998.

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15

Kanamori, Junjiro. Core-Level Spectroscopy in Condensed Systems: Proceedings of the Tenth Taniguchi International Symposium, Kashikojima, Japan, October 19-23, 1987. Berlin, Heidelberg: Springer Berlin Heidelberg, 1988.

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16

NATO Advanced Research Workshop on Narrow-Band Phenomena--Influence of Electrons with Both Band and Localized Character (1987 Staverden, Netherlands). Narrow-band phenomena--influence of electrons with both band and localized character. New York: Plenum Press, 1988.

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17

M, Fried H., and Müller Berndt 1950-, eds. Proceedings of the Workshop on Quantum Chromodynamics, Collisions, Confinement and Chaos: The American University of Paris, 3-8 June 1996. Singapore: World Scientific, 1997.

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18

Solymar, L. Solutions manual for electrical properties of materials. 6th ed. New York: Oxford University Press, 1998.

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19

Nemoshkalenko, Vladimir Vladimirovich. Metody vychislitelʹnoĭ fiziki v teorii tverdogo tela: Zonnai͡a︡ teorii͡a︡ metallov. Kiev: Nauk. dumka, 1985.

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20

Nemoshkalenko, Vladimir Vladimirovich. Metody vychislitelʹnoĭ fiziki v teorii tverdogo tela: Ėlektronnye sostoi͡a︡nii͡a︡ v neidealʹnykh kristallakh. Kiev: Nauk. dumka, 1986.

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21

Sophia, Figarova, and SpringerLink (Online service), eds. Thermodynamics, Gibbs Method and Statistical Physics of Electron Gases: Gibbs Method and Statistical Physics of Electron Gases. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2010.

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22

Workshop on Non-Perturbative QCD (6th 2001 Paris, France). Proceedings of the Sixth Workshop on Non-Perturbative QCD: Paris, France, 5-9 June 2001. Edited by Fried H. M, Gabellini Y, and Müller Berndt 1950-. River Edge, NJ: World Scientific, 2002.

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23

Papanikolaou, N. Handbook of calculated electron momentum distributions, compton profiles, and x-ray form factors of elemental solids. Boca Raton: CRC Press, 1991.

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24

Larsson, Jan. Four essays on factor demand modelling. [Göteborg, Sweden]: Dept. of Economics, School of Economics and Commercial Law, Göteborg University, 2004.

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25

D, Walsh, ed. Lectures on the electrical properties of materials. 5th ed. Oxford: Oxford University Press, 1993.

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26

Solymar, L. Lectures on the electrical properties of materials. 4th ed. Oxford: Oxford University Press, 1988.

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27

Blaha, Stephen. The origin of the standard model: The genesis of four quark and lepton species, parity violation, the electro weak sector, color SU(3), three visible generations of fermions, and one generation of dark matter with dark energy ; Quantum theory of the third kind : a new type of divergence-free quantum field theory supporting a unified standard model of elementary particles and quantum gravity based on a new method in the calculus of variations. Auburn, NH: Pingree-Hill Publishing, 2006.

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28

Solymar, L. Solutions manual for Lectures on the electrical properties of materials. Oxford: Oxford University Press, 1993.

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29

Brooker, Geoffrey. Essays in Physics. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780198857242.001.0001.

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“Essays in Physics” gives accounts of 32 chosen topics. The level is that of a 3–4-year university course in Physics. The topics discussed are diverse but “mainstream”. Each essay aims to say something fresh that complements what the reader will find elsewhere. Just what “fresh” means inevitably depends somewhat on the subject matter. Some chapters give a “different” slant on a familiar idea (e.g. electromagnetic energy, Lorentz transformation, photon emission). Some contain an analysis not available elsewhere (diffraction, feedback stability). Some correct material that is commonplace in many textbooks (much atomic physics). Some add insightful discussion to standard material (free energy, Brillouin zones). One in particular refines technique (perturbation theory). One brings order to confusion (-m dB). The aim in all cases is to encourage a fuller, and correct, understanding, and an enhanced intellectual acuity (critical faculty). With a subject as mature as physics, it is bold to claim originality. However I will dare to make that claim, in particular for Chapters 10, 22 and 30, but also for parts of most other chapters.
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30

Ch, Chipot, and Pohorille A, eds. Free energy calculations: Theory and applications in chemistry and biology. Berlin: Springer, 2007.

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31

(Editor), H. M. Fried, and B. Muller (Editor), eds. Quantum Chromodynamics (High Energy Physics). World Scientific Publishing Company, 1999.

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32

Ayowole, Oyediran Abraham, and George C. Marshall Space Flight Center., eds. Free vibration of rectangular plates with a small initial curvature: Final report. Marshall Space Flight Center, Ala: Marshall Space Flight Center, 1988.

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33

Ch, Chipot, and Pohorille A, eds. Free energy calculations: Theory and applications in chemistry and biology. New York: Springer, 2007.

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34

Investigation of the CH3CN-CO2 Potential Energy Surface (PES) Using Symmetry-Adapted Perturbation Theory (SAPT). Storming Media, 2000.

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35

M, Rami Reddy, and Erion Mark D, eds. Free energy calculations in rational drug design. New York: Kluwer Academic/Plenum Publishers, 2001.

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36

(Editor), Christophe Chipot, and Andrew Pohorille (Editor), eds. Free Energy Calculations: Theory and Applications in Chemistry and Biology (Springer Series in Chemical Physics). Springer, 2007.

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37

Lmto Method Muffintin Orbitals And Electronic Structure. Springer, 2012.

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38

Solymar, L., D. Walsh, and R. R. A. Syms. The free electron theory of metals. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198829942.003.0006.

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The model of the free electron theory is presented. The density of states and the Fermi–Dirac distribution function are discussed, leading to the specific heat of the electrons, the work function, thermionic emission, and the Schottky effects. As examples of applications the field-emission microscope and quartz–halogen lamps are discussed. The photoelectric effect and the energy diagrams relating to the junction between two metals are also discussed.
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39

Electronic Structure and Physical Properties of Solids: The Uses of the LMTO Method. Springer, 2000.

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40

Dreysse, Hugues. Electronic Structure and Physical Properties of Solids: The Uses Of The Lmto Method. Springer, 2010.

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41

V, Snitko O., and Instytut napivprovidnykiv (Akademii͡a︡ nauk Ukraïnsʹkoï RSR), eds. Fizicheskie osnovy poluprovodnikovoĭ ėlektroniki. Kiev: Nauk. dumka, 1985.

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42

Electrical Properties of Materials. Oxford University Press, 2018.

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43

Electrical Properties of Materials. Oxford University Press, 2014.

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44

Solymar, Laszlo, Donald Walsh, and Richard R. A. Syms. Electrical Properties of Materials. Oxford University Press, 2018.

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45

Solymar, Laszlo, and Donald Walsh. Electrical Properties of Materials. Oxford University Press, Incorporated, 2009.

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46

(Editor), R. Haydock, J. E. Inglesfield (Editor), and J. B. Pendry (Editor), eds. Bonding and Structure of Solids. The Royal Society, 1991.

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47

Electrical Properties of Materials. Oxford University Press, 2014.

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48

1936-, Tsuda N., ed. Electronic conduction in oxides. Berlin: Springer-Verlag, 1991.

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49

1936-, Tsuda N., ed. Electronic conduction in oxides. 2nd ed. Berlin: Springer, 2000.

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50

Petrovich, Mushinskiĭ Valeriĭ, and Universitati͡a︡ de Stat "V.I. Lenin.", eds. Ėlektronnye prot͡s︡essy v kristallakh i tonkikh sloi͡a︡kh: Mezhvuzovskiĭ sbornik. Kishinev: "Shtiint͡s︡a", 1990.

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