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1

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

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2

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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3

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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4

Pedro, Bicudo, ed. Topology of strongly correlated systems: Proceedings of the XVIII Lisbon Autumn School, Lisbon, Portugal, 8-13 October, 2000. Singapore: World Scientific, 2001.

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5

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

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6

Shiomi, Yuki. Anomalous and Topological Hall Effects in Itinerant Magnets. Tokyo: Springer Japan, 2013.

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7

Uchida, Masaki. Spectroscopic Study on Charge-Spin-Orbital Coupled Phenomena in Mott-Transition Oxides. Tokyo: Springer Japan, 2013.

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8

Fossheim, Kristian. Superconductivity: Discoveries and Discoverers: Ten Physics Nobel Laureates Tell Their Story. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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9

1938-, Gan Zi-zhao, Su Zhao-bin 1937-, and China Center of Advanced Science and Technology., eds. Two-dimensional strongly correlated electronic systems: Proceedings of the CCAST (World Laboratory) Symposium/Workshop held at the Institute of Theoretical Physics, Beijing, People's Republic of China, May 23-31, 1988. New York: Gordon and Breach, 1989.

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10

Parinov, I. A. Microstructure and Properties of High-Temperature Superconductors. 2nd ed. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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11

Kalia, Susheel. Polymers at Cryogenic Temperatures. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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12

Gordon Godfrey Workshop on Condensed Matter Physics (1991 University of New South Wales). Strongly correlated electron systems: Proceedings of the Gordon Godfrey Workshop on Condensed Matter Physics. Commack, N.Y: Nova Science Publishers, 1992.

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13

service), SpringerLink (Online, ed. Fundamentals of the Physics of Solids: Volume 3 - Normal, Broken-Symmetry, and Correlated Systems. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2010.

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14

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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15

Novel Electronic Structure Theory : General Innovations and Strongly Correlated Systems: General Innovations and Strongly Correlated Systems. Elsevier Science & Technology Books, 2018.

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16

Novel Electronic Structure Theory: General Innovations and Strongly Correlated Systems. Elsevier, 2018. http://dx.doi.org/10.1016/s0065-3276(17)x0004-x.

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17

Quantum Field Theory in Strongly Correlated Electronic Systems Theoretical and Mathematical Physics. Springer, 2010.

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18

Gan, Zi-Zhao. Two-Dimensional Strongly Correlated Electronic Systems (China Center of Advanced Science and Technology). Routledge, 1989.

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19

Optimised Projections For The Ab Initio Simulation Of Large And Strongly Correlated Systems. Springer, 2011.

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20

Noce, C., and A. Romano. Superconductivity and Strongly Correlated Electron Systems: Amalfi, Italy 14-16 October 1993. World Scientific Pub Co Inc, 1995.

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21

C, Noce, Romano A, Scarpetta G, and International Conference"Superconductivity and Strongly Correlated Electron Systems" (1993 : Amalfi, Italy), eds. Superconductivity and strongly correlated electron systems: Amalfi, Italy, 14-16 October 1993. Singapore: World Scientific, 1994.

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22

NATEF Correlated Task Sheets for Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems. Pearson Education, Limited, 2011.

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23

Bertel, E., and A. Menzel. Nanostructured surfaces: Dimensionally constrained electrons and correlation. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.11.

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This article examines dimensionally constrained electrons and electronic correlation in nanostructured surfaces. Correlation effects play an important role in spatial confinement of electrons by nanostructures. The effect of correlation will become increasingly dominant as the dimensionality of the electron wavefunction is reduced. This article focuses on quasi-one-dimensional (quasi-1D) confinement, i.e. more or less strongly coupled one-dimensional nanostructures, with occasional reference to 2D and 0D systems. It first explains how correlated systems exhibit a variety of electronically driven phase transitions, and especially the phases occurring in the generic phase diagram of correlated materials. It then describes electron–electron and electron–phonon interactions in low-dimensional systems and the phase diagram of real quasi-1D systems. Two case studies are considered: metal chains on silicon surfaces and quasi-1D structures on metallic surfaces. The article shows that spontaneous symmetry breaking occurs for many quasi-1D systems on both semiconductor and metal surfaces at low temperature.
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24

Levkivskyi, Ivan. Mesoscopic Quantum Hall Effect. Springer, 2012.

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25

Shiomi, Yuki. Anomalous and Topological Hall Effects in Itinerant Magnets. Springer, 2015.

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26

Shiomi, Yuki. Anomalous and Topological Hall Effects in Itinerant Magnets. Springer, 2013.

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27

Uchida, Masaki. Spectroscopic Study on Charge-Spin-Orbital Coupled Phenomena in Mott-Transition Oxides. Springer, 2016.

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28

Uchida, Masaki. Spectroscopic Study on Charge-Spin-Orbital Coupled Phenomena in Mott-Transition Oxides. Springer, 2013.

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29

Narlikar, A. V., and Y. Y. Fu, eds. Oxford Handbook of Nanoscience and Technology. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.001.0001.

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This Handbook consolidates some of the major scientific and technological achievements in different aspects of the field of nanoscience and technology. It consists of theoretical papers, many of which are linked with current and future nanodevices, molecular-based materials and junctions (including Josephson nanocontacts). Self-organization of nanoparticles, atomic chains, and nanostructures at surfaces are further described in detail. Topics include: a unified view of nanoelectronic devices; electronic and transport properties of doped silicon nanowires; quasi-ballistic electron transport in atomic wires; thermal transport of small systems; patterns and pathways in nanoparticle self-organization; nanotribology; and the electronic structure of epitaxial graphene. The volume also explores quantum-theoretical approaches to proteins and nucleic acids; magnetoresistive phenomena in nanoscale magnetic contacts; novel superconducting states in nanoscale superconductors; left-handed metamaterials; correlated electron transport in molecular junctions; spin currents in semiconductor nanostructures; and disorder-induced electron localization in molecular-based materials.
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30

Fossheim, Kristian. Superconductivity : Discoveries and Discoverers: Ten Physics Nobel Laureates Tell Their Story. Springer, 2013.

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31

Fossheim, Kristian. Superconductivity : Discoveries and Discoverers: Ten Physics Nobel Laureates Tell Their Story. Springer, 2015.

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32

Janez, Bonča, and NATO Advanced Research Workshop on Open Problems in Strongly Correlated Electron Systems (2000 : Bled, Slovenia), eds. Open problems in strongly correlated electron systems. Dordrecht: Kluwer Academic Publishers, published in cooperation with NATO Scientific Affairs Division, 2001.

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33

Strongly correlated systems: International seminar, Dubna, Russia, September 20-24, 1994. Dubna, Russia: Bogolubov Theoretical Laboratory, Joint Institute for Nuclear Research, 1994.

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34

Han, Fuxiang. Coexistance of spin and charge density fluctuations in strongly correlated systems. 1993.

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35

(Editor), Janez Bonca, Peter Prelovsek (Editor), Anton Ramsak (Editor), and Sarben Sarkar (Editor), eds. Open Problems in Strongly Correlated Electron Systems (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2001.

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36

(Editor), Janez Bonca, Peter Prelovsek (Editor), Anton Ramsak (Editor), and Sarben Sarkar (Editor), eds. Open Problems in Strongly Correlated Electron Systems (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2001.

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37

D, Westervelt James, Construction Engineering Research Laboratories (U.S.), and United States. Army. Corps of Engineers., eds. Using neural networks to correlate satellite imagery and ground- truth data. [Champaign, IL]: US Army Corps of Engineers, Construction Engineering Research Laboratories, 1994.

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38

Lopez-Beltran, Antonio, Rodolfo Montironi, and Liang Cheng. Pathology of renal cancer and other tumours affecting the kidney. Edited by James W. F. Catto. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780199659579.003.0085.

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In the past 50 years, classification systems for renal neoplasms have become increasingly complex as distinctive morphologic patterns in renal neoplasms have been recognized and correlated with clinical findings. In addition to classic histopatology, more sophisticated diagnostic tools, including electron microscopy, immunohistochemistry, cytogenetics, and molecular diagnostic techniques have greatly influenced distinctions between various types of renal neoplasms. The current World Health Organization classification of renal neoplasms encompasses nearly 50 distinctive renal neoplasms categorized as malignant or benign tumours. These categories have been expanded during recent years to incorporate newer histotypes, thus suggesting that the next revision of this classification will incorporate some recently recognized entities. In this chapter, we examine clinicopathologic and genetic features of the renal tumours most often seen in clinical practice.
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39

Loukas, Alexandra, and Deepti Agarwal. Who Is Using Alternative Tobacco Products and Why? Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780190676001.003.0013.

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There is a growing array of alternative tobacco and nicotine products, such as hookah, cigarillos, snus, and electronic nicotine delivery systems (e-cigarettes). Both e-cigarette and hookah use are now more prevalent than cigarette use among adolescents in the United States. Alternative products are appealing to adolescents and young adults because they are available in a variety of flavors, often cheaper than cigarettes, and perceived to be less harmful than cigarettes. Existing studies are beginning to provide important information on the prevalence, correlates, and patterns of alternative tobacco and nicotine product use. Longitudinal models that map developmental trajectories and transitions of tobacco and nicotine use are needed to examine factors associated with persistence, progression, or desistence of use and also with changes in patterns of use. Future research can draw on developmental traditions in other areas of substance use to describe the heterogeneity in product use across time.
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