Libros sobre el tema "Phonon energy"

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1

1905-, Fröhlich H., Barrett T. W. 1939- y Pohl Herbert A. 1916-, eds. Energy transfer dynamics: Studies and essays in honor of Herbert Fröhlich on his eightieth birthday. Berlin: Springer-Verlag, 1987.

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2

National Research Council (U.S.). Committee on Potential Applications of Concentrated Solar Photons. Potential applications of concentrated solar photons: A report prepared by the Committee on Potential Applications of Concentrated Solar Photons, Energy Engineering Board, Commission on Engineering and Technical Systems, National Research Council. Washington, D.C: National Academy Press, 1991.

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3

International Symposium on Quasiparticle and Phonon Excitations in Nuclei (1999 RIKEN, Japan). International Symposium on Quasiparticle and Phonon Excitations in Nuclei (Soloviev 99): In memory of Professor Vadim Soloviev (1925-1998), RIKEN, Wako, Saitama, Japan, 4-7 December 1999. Editado por Arima Akito 1930-, Dang Nguyen Dinh, Solovʹev V. G y Rikagaku Kenkyūjo (Japan). Singapore: World Scientific, 2000.

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4

Andrée, Dutreix y European Society for Therapeutic Radiology and Oncology, eds. Monitor unit calculation for high energy photon beams. Leuven: Garant Publishers, 1997.

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5

Evans, Myron W. The enigmatic photon. Dordrecht: Kluwer Academic Publishers, 1994.

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6

NATO Advanced Study Institute on the Physics of the Two-Dimensional Electron Gas (1986 Oostduinkerke, Belgium). The physics of the two-dimensional electron gas. New York: Plenum Press, 1987.

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7

Radwan, Ayman y Jonathan Rodriguez, eds. Energy Efficient Smart Phones for 5G Networks. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-10314-3.

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8

Ben, Mijnheer, ed. Monitor unit calculation for high energy photon beams: Practical examples. Brussels: Estro, 2001.

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9

Taniguchi, Norio. Energy-beam processing of materials: Advanced manufacturing using various energy sources. Oxford: Clarendon Press, 1989.

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10

International Symposium on Lepton and Photon Interactions at High Energies (20th 2001 Rome, Italy). XX International Symposium on Lepton and Photon Interactions at High Energies: Lepton-Photon 01. Editado por Lee-Franzini Juliet, Franzini Paolo, Bossi Fabio y World Scientific (Firm). New Jersey: World Scientific, 2002.

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11

International Commission on Radiation Units and Measurements., ed. Prescribing, recording, and reporting photon beam therapy. Bethesda, Md: International Commission on Radiation Units and Measurements, 1999.

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12

R, Smith Alfred, Purdy James A y Collaborative Working Group on the Evaluation of Treatment Planning for External Photon Beam Radiotherapy., eds. Three-dimensional photon treatment planning: Report of the Collaborative Working Group on the Evaluation of Treatment Planning for External Photon Beam Radiotherapy. New York: Pergamon Press, 1991.

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13

Roychoudhuri, Chandrasekhar. The nature of light: What is a photon? Boca Raton: CRC Press, 2008.

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14

United States. National Aeronautics and Space Administration., ed. Final report for the joint NASA/Goddard-University of Maryland research program in charged particle and high energy photon detector technology. College Park, MD: Dept. of Physics and Astronomy, University of Maryland, 1990.

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15

D, Archer Mary y Nozik Arthur J. 1936-, eds. Nanostructured and photoelectrochemical systems for solar photon conversion. London: Imperial College Press, 2008.

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16

International Symposium on Lepton-Photon Interactions (17th 1995 Beijing, China). 17th International Symposium on Lepton-Photon Interactions: LP 95 : 10-15 August 1995, Beijing, China. Editado por Zheng Zhi-Peng y Chen He Sheng. Singapore: World Scientific, 1996.

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17

International Symposium on Lepton and Photon Interactions at High Energies (20th 2001 Rome, Italy). XX International Symposium on Lepton and Photon Interactions at High Energies: Lepton-photon 01 : Rome, Italy, 23-28 July 2001. Editado por Lee-Franzini Juliet, Franzini Paolo y Bossi Fabio. River Edge, NJ: World Scientific, 2002.

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18

Chen, Gang. Nanoscale energy transport and conversion: A parallel treatment of electrons, molecules, phonons, and photons. New York, NY: Oxford, 2004.

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19

Gang, Chen. Nanoscale energy transport and conversion: A parallel treatment of electrons, molecules, phonons, and photons. Oxford: Oxford University Press, 2005.

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20

Roychoudhuri, Chandrasekhar. The Nature of Light. London: Taylor and Francis, 2008.

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21

Longair, M. S. High energy astrophysics. 2a ed. Cambridge [England]: Cambridge University Press, 1994.

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22

United States. National Aeronautics and Space Administration., ed. Semi-annual progress report for the joint NASA/Goddard-University of Maryland research program in charged particle and high energy photon detector technology under grant NGR 21-002-316, April 1987 to September 1987. College Park, MD: Dept. of Physics and Astronomy, University of Maryland, 1988.

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23

Lux, I. Monte Carlo particle transport methods: Neutron and photon calculations. Boca Raton: CRC Press, 1991.

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24

McCracken, D. R. Photon and electron energy deposition in CANDU reactor fuel channels: A study using SANDYL and EGS4. [Chalk River, Ont: Scientific Document Distribution Office, AECL, 1994.

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25

Chen-hua, Chang, McCollom Alex D y United States. National Aeronautics and Space Administration., eds. On the uncertainty in single molecule fluorescent lifetime and energy emission measurements: Technical report 94-03. [Washington, D.C.]: National Aeronautics and Space Administration, 1994.

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26

International Conference on Electron and Photon Impact Ionization and Related Topics (2004 Louvain-la-Neuve, Belgium). Electron and photon impact ionization and related topics 2004: Proceedings of the International Conference on Electron and Photon Impact Ionization and Related Topics, Louvain-la-Neuve, Belgium, 1-3 July 2004. Bristol: Institute of Physics Pub., 2005.

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27

United States. Department of Energy. Office of Audit Services. Audit report: Recovery of costs for the proprietary use of the advanced photon source. Washington, D.C: U.S. Department of Energy, Office of Inspector General, Office of Audit Services, 2007.

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28

Iiyama, Yutaro. Search for Supersymmetry in pp Collisions at √s = 8 TeV with a Photon, Lepton, and Missing Transverse Energy. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-58661-8.

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29

United States. National Aeronautics and Space Administration., ed. A rare gas optics-free absolute photon flux and energy analyzer for solar and planetary observations: Final report. Los Angeles, Calif: Dept. of Physics and Space Sciences Center, University of Southern California, 1994.

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30

United States. National Aeronautics and Space Administration., ed. A rare gas optics-free absolute photon flux and energy analyzer for solar and planetary observations: Final report. Los Angeles, Calif: Dept. of Physics and Space Sciences Center, University of Southern California, 1994.

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31

United States. National Aeronautics and Space Administration., ed. A rare gas optics-free absolute photon flux and energy analyzer for solar and planetary observations: Final report. Los Angeles, Calif: Dept. of Physics and Space Sciences Center, University of Southern California, 1994.

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32

Bilanovic, Z. Neutron-photon energy deposition in CANDU reactor fuel channels: A comparison of modelling techniques using ANISN and MCNP computer codes. Chalk River, Ont: System Chemistry and Corrosion Branch, Chalk River Laboratories, 1994.

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33

Ashby, Carol Iris Hill, 1953-, Brannon James H y Pang Stella W, eds. Photons and low energy particles in surface processing: Symposium held December 3-6, 1991, Boston, Massachusetts, U.S.A. Pittsburgh, Pa: Materials Research Society, 1992.

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34

Joint International Lepton-Photon Symposium & Europhysics Conference on High Energy Physics (1991 Geneva, Switzerland). Proceedings of the Joint International Lepton-Photon Symposium & Europhysics Conference on High Energy Physics, Geneva, Switzerland, 25 July-1 August 1991. Editado por Hegarty S, Potter K, Quercigh E, European Physical Society, International Union of Pure and Applied Physics. y European Council for Nuclear Research. Singapore: World Scientific, 1992.

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35

Joint International Lepton-Photon Symposium & Europhysics Conference on High Energy Physics (1991 Geneva, Switzerland). Proceedings of the Joint International Lepton-Photon Symposium & Europhysics Conference on High Energy Physics, Geneva, Switzerland, 25 July-1 August 1991. Editado por Hegarty S, Potter K, Quercigh E, European Physical Society, International Union of Pure and Applied Physics. y European Council for Nuclear Research. Singapore: World Scientific, 1992.

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36

United States. National Aeronautics and Space Administration., ed. A rare gas optics-free absolute photon flux and energy analyzer to provide absolute photoionization rates of inflowing interstellar neutrals: Final report. Washington, DC: National Aeronautics and Space Administration, 1994.

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37

United States. National Aeronautics and Space Administration., ed. A rare gas optics-free absolute photon flux and energy analyzer to provide absolute photoionization rates of inflowing interstellar neutrals: Final report. Washington, DC: National Aeronautics and Space Administration, 1994.

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38

Korea-Japan Joint Symposium on Recent Development of Nuclear Study using Electron and Photon Beams (1994 Yonsei University and Pohang Light Source Facility). Proceedings of the Korea-Japan Joint Symposium on Recent Development of Nuclear Study using Electron and Photon Beams: Chang Ki Won Memorial Hall, Yonsei University, Seoul & Pohang Light Source Facility, Pohang, Korea, December 13-15, 1994. Editado por Cheon Il-Tong. Singapore: Global Publication Services, 1995.

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39

Surface phonon spectroscopy of p(2X2)O/Ni(111). 1993.

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40

Ledgerwood, Melanie L. Phonon dynamics and self-energy effects in highly photo-excited germanium. 1995.

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41

Barrett, T. W. Energy Transfer Dynamics: Studies and Essays in Honor of Herbert Frohlich. Springer-Verlag, 1987.

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42

Quasiparticle, International Symposium on y V. G. Solovev. Quasiparticle and Phonon Excitations in Nuclei : In Memory of Professor Vadim Soloviev (1925-1998). World Scientific Publishing Company, 2000.

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43

Tiwari, Sandip. Electromagnetic-matter interactions and devices. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198759874.003.0006.

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This chapter explores electromagnetic-matter interactions from photon to extinction length scales, i.e., nanometer of X-ray and above. Starting with Casimir-Polder effect to understand interactions of metals and dielectrics at near-atomic distance scale, it stretches to larger wavelengths to explore optomechanics and its ability for energy exchange and signal transduction between PHz and GHz. This range is explored with near-quantum sensitivity limits. The chapter also develops the understanding phononic bandgaps, and for photons, it explores the use of energetic coupling for useful devices such as optical tweezers, confocal microscopes and atomic clocks. It also explores miniature accelerators as a frontier area in accelerator physics. Plasmonics—the electromagnetic interaction with electron charge cloud—is explored for propagating and confined conditions together with the approaches’ possible uses. Optoelectronic energy conversion is analyzed in organic and inorganic systems, with their underlying interaction physics through solar cells and its thermodynamic limit, and quantum cascade lasers.
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44

Euler, André, David Maintz, Dushyant Sahani y Hatem Alkadhi. Spectral Imaging: Dual-Energy, Multi-Energy and Photon-Counting CT. Springer International Publishing AG, 2022.

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45

Zhang, H. Mesoscopic Structures and Their Effects on High-Tc Superconductivity. Editado por A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.12.

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This article presents the results of model calculations carried out to determine the mesoscopic structural features of high-temperature superconducting (HTS) crystal structures, and especially their characteristic high critical temperature (Tc) and anisotropy. The crystal structure of high-temperature superconductors (HTSc) is unique in having some mesoscopic features. For example, the structures of a majority of cuprite superconductors are comprised of two structural blocks, perovskite and rock salt, stacked along the c-direction. This article calculates the interaction between the perovskite and rock salt blocks in the form of combinative energy in order to elucidate the effects of mesoscopic structures on high-Tc superconductivity. Both X-ray diffraction and Raman spectroscopy show that a ‘fixed triangle’ exists in the samples under investigation. The article also examines the importance of electron–phonon coupling in high-Tc superconductors.
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46

Lee-Franzini, Juliet, Fabio Bossi y Paolo Franzini. Lepton-Photon 01. World Scientific Publishing Company, 2002.

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47

Light The Physics Of The Photon. Taylor & Francis Group, 2013.

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48

Keller, Ole. Light - the Physics of the Photon. Taylor & Francis Group, 2016.

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49

Devreese, J. T. y F. M. Peeters. The Physics of the Two-Dimensional Electron Gas: Proceedings of a Nato Advanced Study Institute on the Physics of the Two-Dimensional Electron Gas, H (Nato a S I Series Series B, Physics). Springer, 1987.

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50

Rodriguez, Jonathan y Ayman Radwan. Energy Efficient Smart Phones for 5G Networks. Springer, 2016.

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