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1

K, Abe David, and Nusinovich G. S, eds. High energy density and high power RF: 7th Workshop on High Energy Density and High Power RF, Kalamata, Greece, 13-17 June 2005. American Institute of Physics, 2006.

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2

H, Gold Steven, Nusinovich G. S, University of Maryland (College Park, Md.), Naval Research Laboratory (U.S.), and United States. Dept. of Energy., eds. High energy density and high power RF: 6th Workshop on High Energy Density and High Power RF, Berkeley Springs, West Virginia, 22-26 June 2003. American Institute of Physics, 2003.

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3

Drake, R. Paul. High-Energy-Density Physics. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-67711-8.

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4

Klapötke, T. M., ed. High Energy Density Materials. Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/978-3-540-72202-1.

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5

M, Klapötke Thomas, ed. High energy density materials. Springer Verlag, 2007.

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6

Commerce, Ceylon Chamber of, and Deutsche Gesellschaft für Technische Zusammenarbeit (Colombo, Sri Lanka), eds. Power & energy. Ceylon Chamber of Commerce, 2004.

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7

Hinrichs, Roger. Energy. Saunders College Pub., 1992.

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8

Lebedev, Sergey V., ed. High Energy Density Laboratory Astrophysics. Springer Netherlands, 2007. http://dx.doi.org/10.1007/978-1-4020-6055-7.

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9

Kyrala, G. A., ed. High Energy Density Laboratory Astrophysics. Springer Netherlands, 2005. http://dx.doi.org/10.1007/1-4020-4162-4.

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10

Lang, Reg. Residential density and energy conservation. Faculty of Environmental Studies, York University, 1986.

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11

Kyrala, George A. High energy density laboratory astrophysics. Springer, 2005.

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12

Aubrecht, Gordon J. Energy. Merrill Pub. Co., 1989.

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13

Aubrecht, Gordon J. Energy. 2nd ed. Prentice Hall, 1995.

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14

Aubrecht, Gordon J. Energy. Merrill Pub. Co., 1989.

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15

Raṇavaka, Pāṭhalī Campika. Power and power. Patali Champika Ranawaka, 2014.

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16

Barbara, Taylor. Energy and power. F. Watts, 1990.

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17

Barbara, Taylor. Energy and power. F. Watts, 1990.

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18

Woodford, Chris. Power and energy. Facts on File, 2003.

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19

Levete, Sarah. Energy: Nuclear power. Stargazer Books, 2006.

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20

Barbara, Taylor. Energy and power. Franklin Watts, 1990.

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21

Sally, Morgan, ed. Energy and power. Kingfisher, 1995.

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22

Oxlade, Chris. Energy: Water power. Stargazer Books, 2006.

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23

W, Shepherd. Energy studies. Imperial College Press, 1998.

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24

Bowden, Rob. Energy: Wind energy. Stargazer Books, 2006.

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25

Plewa, Tomasz, ed. High Energy Density Laboratory Astrophysics 2008. Springer Netherlands, 2010. http://dx.doi.org/10.1007/978-90-481-9999-0.

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26

Sih, George C., and Emmanuel E. Gdoutos. Mechanics and Physics of Energy Density. Springer Netherlands, 1990. http://dx.doi.org/10.1007/978-94-009-1954-9.

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27

Miller, Debra A. Energy production and alternative energy. Edited by Michael E. Mann. Greenhaven Press, a part of Gale, Cengage Learning, 2010.

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28

Silverstein, Alvin. Energy. Twenty-First Century Books, 1998.

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29

Silverstein, Alvin. Energy. Twenty-First Century Books, 2009.

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30

Herweck, Don. Energy. Compass Point Books, 2009.

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31

Rickard, Graham. Water energy. G. Stevens Children's Books, 1991.

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32

Nelson, Vaughn. Wind energy: Renewable energy and the environment. Taylor & Francis, 2009.

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33

Oxlade, Chris. Energy. Heinemann Library, 1999.

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34

Richards, Julie. Water energy. Marshall Cavendish Benchmark, 2009.

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35

Benduhn, Tea. Nuclear power. Weekly Reader an imprint of Gareth Stevens Pub., 2009.

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36

1965-, Johnson Kenneth F., and Veliotti Thomas R, eds. Energy research developments: Tidal energy, energy efficiency, and solar energy. Nova Science Publishers, 2009.

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37

Smil, Vaclav. Power Density: A Key to Understanding Energy Sources and Uses. MIT Press, 2016.

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38

(Editor), David K. Abe, and Gregory S. Nusinovich (Editor), eds. High Energy Density and High Power RF: 7th Workshop on High Energy Density and High Power RF (AIP Conference Proceedings, CP 807). American Institute of Physics, 2006.

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39

Smil, Vaclav. Power Density: A Key to Understanding Energy Sources and Uses. MIT Press, 2015.

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40

Smil, Vaclav. Power Density: A Key to Understanding Energy Sources and Uses. The MIT Press, 2015.

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41

(Editor), Steven H. Gold, and Gregory S. Nusinovich (Editor), eds. High Energy Density and High Power RF: 6th Workshop on High Energy Density and High Power RF (AIP Conference Proceedings / Accelerators, Beams, and Instrumentations). American Institute of Physics, 2003.

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42

Samantara, Aneeya Kumar, and Satyajit Ratha. Metal-Ion Hybrid Capacitors for Energy Storage: A Balancing Strategy Toward Energy-Power Density. Springer International Publishing AG, 2021.

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43

High-Energy-Density Fuels for Advanced Propulsion: Design and Synthesis. Wiley & Sons, Limited, John, 2020.

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44

Zhang, Xiangwen, Ji-Jun Zou, and Lun Pan. High-Energy-Density Fuels for Advanced Propulsion: Design and Synthesis. Wiley & Sons, Incorporated, John, 2020.

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45

Zhang, Xiangwen, Ji-Jun Zou, and Lun Pan. High-Energy-Density Fuels for Advanced Propulsion: Design and Synthesis. Wiley & Sons, Incorporated, John, 2020.

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46

High Energy Density and High Power RF: 5th Workshop on High Energy Density and High Power RF, Snowbird, Utah, 1-5 October 2001 (AIP Conference Proceedings / Accelerators, Beams, and Instrumentations). American Institute of Physics, 2002.

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47

Rez, Peter. Electrical Power Generation: Hydroelectricity, Tides and Pumped Storage. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198802297.003.0008.

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Hydroelectricity already contributes to electrical supply in places where it can. What are needed are rivers with adequate flow that can be dammed to provide a significant vertical drop. These are usually found in mountainous regions where runoff from snowmelt provides adequate water supply. Renewables such as solar and wind have low power densities. That means large areas will be needed to meet the electrical energy needs of cities in developed countries. The other problem is that they do not supply power when it is needed. Energy can be stored by pumping water uphill into a reservoir at a hi
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48

Wolf, E. L. Fusion Energy Technology on Earth. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198769804.003.0006.

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Deuterium fusion in a small field-ionization device is described. The small rate of deuterium fusion observed in the deuterium-muon version of the hydrogen molecule-ion is discussed. A simplified description is offered of the tokamak reactor filled with deuterium or deuterium-tritium molecular gases. The potential power output of such devices, neglecting any role of plasma instabilities, is estimated roughly by scaling in temperature and density the formula for fusion in the Sun’s core provided in Chapter 4. If it can be achieved, deuteron fusion would qualify as a renewable energy process giv
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49

Bang, Jungsik. Effects of excitation density and energy transfer on cathodoluminescence from powder phosphors with and without embedded nanoparticles. 2004.

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50

Smil, Vaclav. Power Density. The MIT Press, 2015. http://dx.doi.org/10.7551/mitpress/10046.001.0001.

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