Książki na temat „Electronic quantum coherence”

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1

Italy) International School of Physics "Enrico Fermi" (171st 2008 Varenna. Quantum coherence in solid state systems. Amsterdam: IOS Press, 2009.

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2

Tadao, Shimizu, i International Symposium on Atomic Frequency Standards and Coherent Quantum Electronics (1993 : Nara, Japan), red. Atomic frequency standards and coherent quantum electronics. Tokyo: Japanese Journal of AppliedPhysics, 1994.

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3

1916-, Prokhorov A. M., i Institute for Advanced Physics Studies. La Jolla International School of Physics., red. Coherent radiation generation and particle acceleration. New York: American Institute of Physics, 1992.

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4

International School of Physics "Enrico Fermi" (1995 Varenna, Italy). Coherent and collective interactions of particles and radiation beams: Varenna on Lake Como, Villa Monastero 11-21 July 1995. Amsterdam: IOS Press, 1996.

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5

Topical, Meeting on Short Wavelength Coherent Radiation Generation and Applications (1988 North Falmouth Ma ). OSA proceedings on short wavelength coherent radiation--generation and applications: Proceedings of the Fourth Topical Meeting, September 26-29, 1988, North Falmouth, MA. Washington, DC: Optical Society of America, 1988.

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6

Topical Meeting on Short Wavelength Coherent Radiation, Generation and Applications (1986 Monterey, Calif.). Topical Meeting on Short Wavelength Radiation, Generation and Applications: Summaries of papers presented at the Short Wavelength Coherent Radiation: Generation and Applications Topical Meeting, March 24-26, 1986, Monterey, California. Washington, DC: The Society, 1986.

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7

Topical Meeting on Short Wavelength Coherent Radiation, Generation and Applications. (1991 Monterey, Calif.). OSA proceedings on short-wavelength coherent radiation--generation and applications: Proceedings of the Fifth Topical Meeting, April 8-10, 1991, Monterey, California. Washington, DC: Optical Society of America, 1991.

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8

Spectroscopy with coherent radiation: Selected papers of Norman F. Ramsey with commentary. Singapore: World Scientific, 1998.

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9

1953-, Akulin V. M., red. Decoherence, entanglement and information protection in complex quantum systems. Dordrecht: Springer, 2005.

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10

Phillips, R. T. Coherent optical interactions in semiconductors. Boston, MA: Springer, 1994.

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11

America, Optical Society of, i Nonlinear Guided Waves and their Applications Topical Meeting (1999 : Dijon, France), red. Nonlinear guided waves and their applications: Technical digest : 1-3 September 1999, Palais des Congrès, Dijon, France. Washington, DC: The Society, 1999.

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12

America, Optical Society of, Wissenschaftliche Gesellschaft Lasertechnik, Conference on Lasers and Electro-optics Europe (1999 : Munich, Germany) i European Quantum Electronics Conference, red. Novel lasers and devices: Basic aspects : 14-16 June 1999, ICM--International Congress Center München, Munich, Germany. Washington, DC: Optical Society of America, 1999.

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13

Lasers and Electro-optics Society (Institute of Electrical and Electronics Engineers) i Optical Society of America, red. Spatial light modulators and integrated optoelectronic arrays: April 12-14, 1999, Snowmass Conference Center, Snowmass Village at Aspen, Colorado. Washington, DC: Optical Society of America, 1999.

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14

Mathematical Aspects of Weyl Quantization and Phase. World Scientific Publishing Company, 2000.

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15

Flatté, Michael E., i Ionel Tifrea. Manipulating Quantum Coherence in Solid State Systems. Springer London, Limited, 2007.

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16

Beenakker, Carlo W. J. Classical and quantum optics. Redaktorzy Gernot Akemann, Jinho Baik i Philippe Di Francesco. Oxford University Press, 2018. http://dx.doi.org/10.1093/oxfordhb/9780198744191.013.36.

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Streszczenie:
This article focuses on applications of random matrix theory (RMT) to both classical optics and quantum optics, with emphasis on optical systems such as disordered wave guides and chaotic resonators. The discussion centres on topics that do not have an immediate analogue in electronics, either because they cannot readily be measured in the solid state or because they involve aspects (such as absorption, amplification, or bosonic statistics) that do not apply to electrons. The article first considers applications of RMT to classical optics, including optical speckle and coherent backscattering, reflection from an absorbing random medium, long-range wave function correlations in an open resonator, and direct detection of open transmission channels. It then discusses applications to quantum optics, namely: the statistics of grey-body radiation, lasing in a chaotic cavity, and the effect of absorption on the reflection eigenvalue statistics in a multimode wave guide.
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17

(Editor), Michael E. Flatté, i Ionel Tifrea (Editor), red. Manipulating Quantum Coherence in Solid State Systems (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2007.

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18

Topical Meeting on Short Wavelength Radiation, Generation and Applications: Summaries of papers presented at the Short Wavelength Coherent Radiation: Generation ... March 24-26, 1986, Monterey, California. The Society, 1986.

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19

Topical Meeting on Short Wavelength Radiation, Generation and Applications: Summaries of papers presented at the Short Wavelength Coherent Radiation: Generation ... March 24-26, 1986, Monterey, California. The Society, 1986.

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20

T, Attwood David, Bokor J i Topical Meeting on Short Wavelength Coherent Radiation, Generation and Applications (1986 : Monterey, Calif.), red. Short wavelength coherent radiation: Generation and applications, Monterey, CA 1986. New York, NY: American Institute of Physics, 1986.

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21

Ceglio i Buchbaum. Short Wave Length Coherent Radiation, Generation and Application. Optical Society of Amer, 1991.

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22

(Editor), Michael E. Flatté, i Ionel Tifrea (Editor), red. Manipulating Quantum Coherence in Solid State Systems (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2007.

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23

APS, IEEE Lasers & Electro-Optics Society i Osa. International Quantum Electonics Conference: 1999 (International Quantum Electronics Conference//Digest of Technical Papers). Optical Society of America, 1999.

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24

The Theory of Coherent Radiation by Intense Electron Beams (Particle Acceleration and Detection). Springer, 2006.

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25

Lebedev, Andrey N., V. I. Kurilko i Vyacheslov A. Buts. The Theory of Coherent Radiation by Intense Electron Beams (Particle Acceleration and Detection). Springer, 2006.

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26

Greve, Kristiaan De. Towards Solid-State Quantum Repeaters: Ultrafast, Coherent Optical Control and Spin-Photon Entanglement in Charged InAs Quantum Dots. Springer, 2016.

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27

Greve, Kristiaan De. Towards Solid-State Quantum Repeaters: Ultrafast, Coherent Optical Control and Spin-Photon Entanglement in Charged Inas Quantum Dots. Springer London, Limited, 2013.

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28

Lebedev, Andrey N., V. I. Kurilko i Vyacheslov A. Buts. The Theory of Coherent Radiation by Intense Electron Beams. Springer, 2010.

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29

Brandes, Tobias, i Stefan Kettemann. Anderson Localization And Its Ramifications: Disorder, Phase Coherence, and Electron Correlations. Springer, 2010.

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30

Narlikar, A. V. Small Superconductors—Introduction. Redaktor A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.1.

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This article provides an overview of small superconductors, including some of the basic definitions, prominent characteristics, and important effects manifested by such materials. In particular, it discusses size effects, surface effects, electron-mean-free-path effects, phase slips, unusual vortex states, and proximity effects. The article first considers the two characteristic length scales of superconductors, namely the magnetic penetration depth and coherence length, before proceeding with an analysis of two size effects that account for how superconductivity responds when the bulk sample is made smaller and smaller in the nano range: the small size effects and the quantum size effects. It then examines other phenomena associated with small superconductors such as quantum fluctuations, Anderson limit, parity and shell effects, along with the behaviour of nanowires and ultra-thin fims. It also describes some of the experimental techniques commonly used in the synthesis of small superconductors.
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31

(Editor), Tobias Brandes, i Stefan Kettemann (Editor), red. Anderson Localization and Its Ramifications: Disorder, Phase Coherence, and Electron Correlations (Lecture Notes in Physics). Springer, 2003.

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32

Ruggiero, Berardo, Per Delsing, Carmine Granata, Yuri A. Pashkin i P. Silvestrini. Quantum Computing in Solid State Systems. Springer London, Limited, 2006.

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33

Soliton Management in Periodic Systems. Springer, 2005.

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34

Quantum optoelectronics: Technical digest : April 12-13, 1999, Snowmass Conference Center, Snowmass Village at Aspen, Colorado. Washington, DC: Optical Society of America, 1999.

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