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1

Hutiray, Gyula, and Jenö Sólyom, eds. Charge Density Waves in Solids. Springer Berlin Heidelberg, 1985. http://dx.doi.org/10.1007/3-540-13913-3.

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2

P, Gorʹkov L., and Grüner George, eds. Charge density waves in solids. North-Holland, 1989.

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3

Tilman, Butz, ed. Nuclear spectroscopy on charge density wave systems. Kluwer Academic Publishers, 1992.

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4

Visscher, Mark Ivar. Transport in mesoscopic charge density wawe systems. Delft Univ. Press, 1998.

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5

Butz, Tilman. Nuclear Spectroscopy on Charge Density Wave Systems. Springer Netherlands, 1992.

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6

Edkins, Stephen. Visualising the Charge and Cooper-Pair Density Waves in Cuprates. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-65975-6.

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7

Okamoto, Junichi. Theoretical study of charge density waves in transition metal materials. [publisher not identified], 2014.

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8

1915-, Jeffrey George A., Piniella Juan F, and North Atlantic Treaty Organization. Scientific Affairs Division., eds. The application of charge density research to chemistry and drug design. Plenum Press, 1991.

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9

Jeffrey, George A. The Application of Charge Density Research to Chemistry and Drug Design. Springer US, 1991.

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10

W, Boswell Frank, and Bennett J. Craig, eds. Advances in the cyrstallographic and microstructural analysis of charge density wave modulated crystals. Kluwer Academic Publishers, 1999.

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11

Budkowski, Andrzej. Symmetry analysis of some modulated structures: Study of charge density wave-like periodic deviations in NbS₃, Au₂+x, Cd₁-x, TaTe₄ and (Ta₀.₇₂Nb₀.₂₈)Te₄. Nakł. Uniwersytetu Jagiellońskiego, 1992.

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12

Kim, Hun-ho. Uniaxial Pressure Study of Charge Density Waves in a High-T꜀ Cuprate Superconductor. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-99898-1.

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13

1940-, Schlenker Claire, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Study Institute on Physics and Chemistry of Low-Dimensional Inorganic Conductors (1995 : Les Houches, France), eds. Physics and chemistry of low-dimensional inorganic conductors. Plenum Press, 1996.

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14

Chen, Chuan. On the Nature of Charge Density Waves, Superconductivity and Their Interplay in 1T-TiSe₂. Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-29825-8.

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15

Saravanan, R. Metal and alloy bonding: An experimental analysis ; charge density in metals and alloys. Springer, 2012.

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16

Gy, Hutiray, and Sólyom J, eds. Charge density waves in solids: Proceedings of the international conference held in Budapest, Hungary, September 3-7, 1984. Springer-Verlag, 1985.

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17

1936-1984, McMillan William L., Hutiray Gy, So lyom J, and International Conference on Charge Density Waves in Solids (1984 : Budapest, Hungary)., eds. Charge density waves in solids: Proceedings of the International Conference held in Budapest, Hungary, September 3-7, 1984. Springer-Verlag, 1985.

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18

Arguello, Carlos Jose. Scanning Tunneling Microscopy Studies of Charge Density Waves in NbSe₂ and muSR studies of Nickel doping in BaFe₂As₂. [publisher not identified], 2014.

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19

Butz, Tilman, ed. Nuclear Spectroscopy on Charge Density Wave Systems. Springer Netherlands, 1992. http://dx.doi.org/10.1007/978-94-015-1299-2.

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20

Zong, Alfred. Emergent States in Photoinduced Charge-Density-Wave Transitions. Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-81751-0.

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21

Boswell, Frank W. Advances in the Crystallographic and Microstructural Analysis of Charge Density Wave Modulated Crystals. Springer Netherlands, 1999.

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22

Boswell, Frank W., and J. Craig Bennett, eds. Advances in the Crystallographic and Microstructural Analysis of Charge Density Wave Modulated Crystals. Springer Netherlands, 1999. http://dx.doi.org/10.1007/978-94-011-4603-6.

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23

Craig, Bennett J., and Boswell Frank W, eds. Advances in the crystallographic and microstructural analysis of charge density wave modulated crystals. Kluwer Academi Publishers, 1999.

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24

1945-, Gilbert Richard J., and Jacquemin Alexis, eds. Barriers to entry and strategic competition. Routledge, 2001.

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25

Charge Density Waves in Solids. Elsevier, 1989. http://dx.doi.org/10.1016/c2009-0-14290-3.

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26

Gor'kov, L. P., and G. Grüner. Charge Density Waves in Solids. Elsevier Science & Technology Books, 2012.

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27

Gruner, George. Density Waves in Solids. Taylor & Francis Group, 2018.

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28

Gruner, George. Density Waves in Solids. Taylor & Francis Group, 2018.

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29

Gruner, George, and George Gr¿ner. Density Waves in Solids. Westview Press, 2000.

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30

Gruner, George. Density Waves in Solids. Avalon Publishing, 2009.

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31

Density Waves in Solids. Taylor & Francis Group, 2018.

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32

Edkins, Stephen. Visualising the Charge and Cooper-Pair Density Waves in Cuprates. Springer, 2018.

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33

Edkins, Stephen. Visualising the Charge and Cooper-Pair Density Waves in Cuprates. Springer, 2017.

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34

Jeffrey, George A. The Application of Charge Density Research to Chemistry and Drug Design. Springer, 2013.

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35

(Editor), F. W. Boswell, and J. Craig Bennett (Editor), eds. Advances in the Crystallographic and Microstructural Analysis of Charge Density Wave Modulated Crystals (Physics and Chemistry of Materials with Low-Dimensional Structures). Springer, 1999.

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36

(Editor), G. A. Jeffrey, and J. F. Piniella (Editor), eds. The Application of Charge Density Research to Chemistry and Drug Design (NATO Science Series: B:). Springer, 1991.

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37

Kim, Hun-ho. Uniaxial Pressure Study of Charge Density Waves in a High-Tc Cuprate Superconductor. Springer International Publishing AG, 2022.

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38

Physics and Chemistry of Low-Dimensional Inorganic Conductors. Island Press, 1996.

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39

Uniaxial Pressure Study of Charge Density Waves in a High-T꜀ Cuprate Superconductor. Springer International Publishing AG, 2023.

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40

Chen, Chuan. On the Nature of Charge Density Waves, Superconductivity and Their Interplay in 1T-TiSe₂. Springer, 2019.

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41

Chen, Chüan. On the Nature of Charge Density Waves, Superconductivity and Their Interplay In 1T-TiSe₂. Springer International Publishing AG, 2020.

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42

Zhang, Junqing. High resolution x-ray scattering study of the charge density waves in quasi-one-dimensional material K0.3Mo03. 1993.

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43

Solyom, J., and G. Hutiray. Charge Density Waves in Solids: Proceedings of the International Conference Held in Budapest, Hungary, September 3-7, 1984. Springer, 2014.

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44

Mantel, O. C. Mesoscopic Charge Density Wave Wires. Delft Univ Pr, 1999.

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45

Butz, T. Nuclear Spectroscopy on Charge Density Wave Systems. Springer, 2012.

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46

Zong, Alfred. Emergent States in Photoinduced Charge-Density-Wave Transitions. Springer International Publishing AG, 2021.

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47

Zong, Alfred. Emergent States in Photoinduced Charge-Density-Wave Transitions. Springer International Publishing AG, 2022.

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48

Greffet, Jean-Jacques. Introduction to near-field optics and plasmonics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198768609.003.0002.

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Abstract:
A striking difference between near-field optics and far-field optics is the possibility of breaking the so-called diffraction limit, namely of confining light to subwavelength spots. The first section of this chapter introduces the concept of evanescent waves to discuss the subwavelength confinement of light. One of the key ideas put forward is that the presence of charges is required to generate highly localized fields. It is thus necessary to have a tool to compute fields in the presence of these charges. With this aim, the concept of the Green tensor is introduced in the second section. This is a powerful tool for computing electromagnetic fields in inhomogeneous environments. It is also a key quantity for discussing the local density of states and therefore controlling spontaneous emission. The final section is devoted to an introduction to surface plasmons, which are very useful for manipulating electromagnetic fields at the nanoscale.
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