Books on the topic 'Strongly interacting quantum systems'

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1

1938-, Arenhövel H., ed. Many body structure of strongly interacting systems: Refereed and selected contributions of the symposium "20 years of physics at the Mainz Microtron MAMI," Mainz, Germany, October 19-22, 2005. Bologna, Italy: Societá italiana di fisica, 2006.

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2

Cassing, Wolfgang. Transport Theories for Strongly-Interacting Systems. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-80295-0.

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3

Salabura, Piotr. Vector mesons in strongly interacting systems. Kraków: Wydawn. Uniwersytetu Jagiellońskiego, 2003.

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4

Arenhövel, Hartmuth, Hartmut Backe, Dieter Drechsel, Jörg Friedrich, Karl-Heinz Kaiser, and Thomas Walcher, eds. Many Body Structure of Strongly Interacting Systems. Berlin, Heidelberg: Springer Berlin Heidelberg, 2006. http://dx.doi.org/10.1007/3-540-36754-3.

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5

Kharzeev, Dmitri. Strongly Interacting Matter in Magnetic Fields. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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6

Gabor, Kalman, Rommel J. Martin, Blagoev Krastan, and International Conference on Strongly Coupled Coulomb Systems (1997 : Boston College), eds. Strongly coupled coulomb systems. New York: Plenum Press, 1998.

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7

Kalman, Gabor, J. Martin Rommel, and Krastan Blagoev. Strongly coupled coulomb systems. New York: Kluwer Academic, 2002.

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8

Nozières, Philippe. Theory of interacting Fermi systems. Reading, Mass: Addison-Wesley, 1997.

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9

M, Tsvelik Alexei, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Study Institute on New Theoretical Approaches to Strongly Correlated Systems (1999 : Cambridge, UK), eds. New theoretical approaches to strongly correlated systems. Dordrecht: Kluwer Academic Publishers, 2001.

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10

José, Carmelo, ed. Strongly correlated systems, coherence and entanglement. Singapore: World Scientific, 2007.

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11

Czischek, Stefanie. Neural-Network Simulation of Strongly Correlated Quantum Systems. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-52715-0.

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12

Nagaosa, Naoto. Quantum Field Theory in Strongly Correlated Electronic Systems. Berlin, Heidelberg: Springer Berlin Heidelberg, 1999. http://dx.doi.org/10.1007/978-3-662-03795-9.

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13

Nagaosa, N. Quantum field theory in strongly correlated electronic systems. Berlin: Springer, 1999.

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14

Self-consistent quantum field theory and bosonization for strongly correlated electron systems. Berlin: Springer, 1999.

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15

Moral, Pierre Del. Feynman-Kac formulae: Genealogical and interacting particle systems with applications. New York: Springer-Verlag, 2004.

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16

Training Course in the Physics of Strongly Correlated Systems (12th 2007 Salerno, Italy). Lectures on the physics of strongly correlated systems XII: Twelfth Training Course in the Physics of Strongly Correlated Systems, Salerno, Italy, 1-12 October 2007. Edited by Avella Adolfo and Mancini Ferdinando. Melville, N.Y: American Institute of Physics, 2008.

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17

Nomura, Kosuke. Interacting Boson Model from Energy Density Functionals. Tokyo: Springer Japan, 2013.

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18

M, Gorbatov A., and Kalininskiĭ gosudarstvennyĭ universitet, eds. The Theory of quantum systems with strong interaction: International proceedings on few-body physics. Kalinin: [Kalininskiĭ gos. universitet], 1989.

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19

Training Course in the Physics of Correlated Electron Systems and High-Tc Superconductors (11th 2006 Salerno, Italy). Lectures on the physics of strongly correlated systems XI: Eleventh Training Course in the Physics of Strongly Correlated Systems, Salerno, Italy, 2-13 October 2006. Edited by Avella Adolfo, Mancini Ferdinando, and American Institute of Physics. Melville, N.Y: American Institute of Physics, 2007.

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20

Kontani, Hiroshi. Transport Phenomena in Strongly Correlated Fermi Liquids. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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21

Adolfo, Avella, Mancini Ferdinando, and American Institute of Physics, eds. Lectures on the physics of strongly correlated systems XIV: Fourteenth Training Course in the Physics of Strongly Correlated Systems, Vietri sul Mare (Salerno), Italy, 5-16 October 2009. Melville, N.Y: American Institute of Physics, 2010.

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22

Italy) Training Course in the Physics of Strongly Correlated Systems (16th 2011 Vietri sul Mare. Lectures on the physics of strongly correlated systems XVI: Sixteenth Training Course in the Physics of Strongly Correlated Systems, Vietri Sul Mare (Salerno), Italy, 3-14 October 2011. Edited by Avella Adolfo and Mancini Ferdinando. Melville, N.Y: American Institute of Physics, 2012.

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23

service), SpringerLink (Online, ed. Mesoscopic Quantum Hall Effect. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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24

service), SpringerLink (Online, ed. Extreme States of Matter in Strong Interaction Physics: An Introduction. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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25

Rivasseau, Vincent. Quantum Many Body Systems: Cetraro, Italy 2010, Editors: Alessandro Giuliani, Vieri Mastropietro, Jakob Yngvason. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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26

IMSS, Symposium (2011 Tsukuba-shi Japan). Instiute of Materials Structure Science Symposium '11: Prospects of quantum beam sciences at IMSS : strongly correlated systems and future ERL sciences. Tsukuba-shi, Japan: High Energy Accelerator Research Organization, 2012.

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27

International Conference on Strongly Coupled Coulomb Systems (1999 Saint-Malo, France). The 1999 International Conference on Strongly Coupled Coulomb Systems: 99SccS99 : Palais du Grand Large, Saint-Malo, France, September 4-10, 1999. Les Ulis, France: EDP Sciences, 2000.

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28

International Conference on Strongly Coupled Coulomb Systems (1999 Saint-Malo, France). The 1999 International Conference on Strongly Coupled Coulomb Systems: 99SccS99, Palais du Grand Large, Saint-Malo, France, September 4-10, 1999. Les Ulis, France: EDP Sciences, 2000.

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29

Cleymans, Jean. Phase Structure of Strongly Interacting Matter: Proceedings of a Summer School on Theoretical Physics, Held at the University of Cape Town, South Africa, January 8-19, 1990. Berlin, Heidelberg: Springer Berlin Heidelberg, 1990.

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30

G, Baskaran, ed. Strongly correlated electron systems II: Proceedings of the Adriatico research conference and miniworkshop, ICTP, Trieste, Italy, 18 June-27 July 1990. Singapore: World Scientific, 1991.

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31

service), SpringerLink (Online, ed. Non-Universal Superconducting Gap Structure in Iron-Pnictides Revealed by Magnetic Penetration Depth Measurements. Tokyo: Springer Japan, 2013.

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32

Thermal relaxation for particle systems in interaction with several bosonic heat reservoirs. Norderstedt: Books on Demand GmbH, 2004.

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33

C, Pati J., Shafi Q, and Yu Lu, eds. Current topics in condensed matter and particle physics: Non-perturbative phenomena and strongly correlated systems, 19 May-14 June 1991. Singapore: World Scientific, 1993.

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34

Giamarchi, Thierry, Andrew J. Millis, Olivier Parcollet, Hubert Saleur, and Leticia F. Cugliandolo, eds. Strongly Interacting Quantum Systems out of Equilibrium. Oxford University Press, 2016. http://dx.doi.org/10.1093/acprof:oso/9780198768166.001.0001.

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35

Zinner, Nikolaj Thomas, and Manual Valiente. Strongly Interacting Quantum Systems in Structured Media: Many Body Physics. Institute of Physics Publishing, 2022.

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36

Valiente, Manual. Strongly Interacting Quantum Systems in Structured Media: Many Body Physics. Institute of Physics Publishing, 2022.

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37

Strongly Interacting Quantum Systems out of Equilibrium : Lecture Notes of the Les Houches Summer School: Volume 99, August 2012. Oxford University Press, 2016.

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38

Many Body Structure of Strongly Interacting Systems: Refereed and Selected Contributions from the Symposium "20 Years of Physics at the Mainz Microtron MAMI". Springer, 2006.

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39

Quantum Transport in Periodically Driven Systems: Theory and Application to Atoms and Molecules Interacting with Interacting with Intense Strong Laser Pulses. World Scientific Publishing Company, 2007.

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40

Eckle, Hans-Peter. Models of Quantum Matter. Oxford University Press, 2019. http://dx.doi.org/10.1093/oso/9780199678839.001.0001.

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This book focuses on the theory of quantum matter, strongly interacting systems of quantum many–particle physics, particularly on their study using exactly solvable and quantum integrable models with Bethe ansatz methods. Part 1 explores the fundamental methods of statistical physics and quantum many–particle physics required for an understanding of quantum matter. It also presents a selection of the most important model systems to describe quantum matter ranging from the Hubbard model of condensed matter physics to the Rabi model of quantum optics. The remaining five parts of the book examines appropriate special cases of these models with respect to their exact solutions using Bethe ansatz methods for the ground state, finite–size, and finite temperature properties. They also demonstrate the quantum integrability of an exemplary model, the Heisenberg quantum spin chain, within the framework of the quantum inverse scattering method and through the algebraic Bethe ansatz. Further models, whose Bethe ansatz solutions are derived and examined, include the Bose and Fermi gases in one dimension, the one–dimensional Hubbard model, the Kondo model, and the quantum Tavis–Cummings model, the latter a model descendent from the Rabi model.
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41

Hafezi, Mohammad. Strongly interacting systems in AMO physics. 2009.

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42

Accardi, Luigi, and Franco Fagnola. Quantum Interacting Particle Systems. WORLD SCIENTIFIC, 2002. http://dx.doi.org/10.1142/5055.

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43

(Editor), Gabor J. Kalman, J. Martin Rommel (Editor), and Krastan Blagoev (Editor), eds. Strongly Coupled Coulomb Systems. Springer, 1999.

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44

Kircan, Marijana. Quantum Impurities in Strongly Correlated Electron Systems. Lulu Press, Inc., 2013.

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45

Strongly Correlated Systems Numerical Methods. Springer-Verlag Berlin and Heidelberg GmbH &, 2013.

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46

Bohigas, Oriol, and Hans Weidenmuller. History – an overview. Edited by Gernot Akemann, Jinho Baik, and Philippe Di Francesco. Oxford University Press, 2018. http://dx.doi.org/10.1093/oxfordhb/9780198744191.013.2.

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This article discusses the first four decades of the history of random matrix theory (RMT), that is, until about 1990. It first considers Niels Bohr's formulation of the concept of the compound nucleus, which is at the root of the use of random matrices in physics, before analysing the development of the theory of spectral fluctuations. In particular, it examines the Wishart ensemble; Dyson's classification leading to the three canonical ensembles — Gaussian Orthogonal Ensemble (GOE), Gaussian Unitary Ensemble (GUE), and Gaussian Symplectic Ensemble (GSE); and the breaking of a symmetry or an invariance. It also describes how random matrix models emerged from quantum physics, more specifically from a statistical approach to the strongly interacting many-body system of the atomic nucleus. The article concludes with an overview of data on nuclear resonances, many-body theory, chaos, number theory, scattering theory, replica trick and supersymmetry, disordered solids, and interacting fermions and field theory.
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47

Clemens, James Peter. Nonclassical effects in strongly coupled dissipative quantum systems. 1999.

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48

J. M. P. Carmelo (Editor), J. M. B. Lopes Dos Santos (Editor), V. Rocha Vieira (Editor), and P. D. Sacramento (Editor), eds. Strongly Correlated Systems, Coherence and Entanglement. World Scientific Publishing Company, 2007.

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49

Czischek, Stefanie. Neural-Network Simulation of Strongly Correlated Quantum Systems. Springer International Publishing AG, 2020.

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50

Czischek, Stefanie. Neural-Network Simulation of Strongly Correlated Quantum Systems. Springer International Publishing AG, 2021.

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