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1

Dalmas, De Réotier Pierre, ed. Muon spin rotation, relaxation, and resonance: Applications to condensed matter. Oxford: Oxford University Press, 2010.

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2

W, E. Heraeus Seminar (165th 1996 Bad Honnef Germany). Theory of spin lattices and lattice gauge models: Proceedings of the 165th WE-Heraeus-Seminar held at the Physikzentrum, Bad Honnef, Germany, 14-16 October 1996. Berlin: Springer-Verlag, 1997.

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3

Lenk, R. Fluctuations, diffusion, and spin relaxation. Amsterdam: Elsevier, 1986.

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4

Strutz, Thomas. High magnetic field electron spin-lattice relaxation in a diluted magnetic semiconductor: CdMnTe. Konstanz: Hartung-Gorre Verlag, 1991.

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5

Petrovich, Zakharcheni͡a︡ Boris, and Meier F. 1943-, eds. Opticheskai͡a︡ orientat͡s︡ii͡a︡. Leningrad: "Nauka," Leningradskoe otd-nie, 1989.

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6

Kutter, Christoph. Pulsed electron paramagnetic resonance in high magnetic fields using far infrared lasers. Konstanz: Hartung-Gorre, 1995.

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7

Lena, Mäler, ed. Nuclear spin relaxation in liquids: Theory, experiments, and applications. Boca Raton, FL: Taylor&Francis, 2006.

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8

Latanowicz, Lidia. Procesy magnetycznej relaksacji jądrowej w obecności fluktuacji części radialnej oddziaływania dipolowego. Poznań: Wydawn. Nauk. Uniwersytetu im. Adama Mickiewicza w Poznaniu, 1988.

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9

Suchański, Wiesław. Analiza wewnątrzmolekularnych ruchów stochastycznych: Badania za pomocą magnetycznej relaksacji jądrowej ¹³C. Poznań: Wydawn. Nauk. Uniwersytetu im. Adama Mickiewicza w Poznaniu, 1993.

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10

Ram, Kossowsky, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Study Institute on Physics and Materials Science of Vortex States, Flux Pinning and Dynamics (1998 : Kusadasi, Turkey), eds. Physics and materials science of vortex states, flux pinning and dynamics. Dordrecht: Kluwer, 1999.

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11

Ram, Kossowsky, and North Atlantic Treaty Organization. Scientific Affairs Division., eds. Physics and materials science of vortex states, flux pinning and dynamics. Dordrecht: Kluwer, 1999.

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12

Wu, Jie Qiang. Spin relaxation mechanisms controlling magnetic-field dependent radical pair recombination kinetics in nanoscopic reactors. Konstanz: Hartung-Gorre Verlag, 1993.

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13

Rosenfeld, Josi. The coupled cluster method applied to the spin-1/2 XXZ model on the two-dimensional honeycomb lattice. Manchester: UMIST, 1996.

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14

Wylie, Matthew. Neutron scattering and muon spin rotation studies of the flux lattice in high temperature superconductors: Y Matthew Wylie. Birmingham: University of Birmingham, 1996.

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15

Kutter, Christopher. Pulsed electron paramagnetic resonance in high magnetic fields using far infrared lasers: Dissertation zur Erlangung des akademischen Grades des Docktors der Naturwissenschaften an der Universität Konstanz Fakultät für Physik. Konstanz: Hartung-Gorre Verlag Konstanz, 1995.

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16

M, Semenova N., ed. Metastabilʹnye fazovye sostoi͡a︡nii͡a︡ i kinetika relaksat͡s︡ii: Sbornik nauchnykh trudov. Ekaterinburg: In-t teplofiziki UrO RAN, 1992.

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17

Staples, I. Application of the coupled cluster method to the two dimensional triangular lattice frustrated spin-1/2 system with an antiferromagnetic Heisenberg Hamiltonian. Manchester: UMIST, 1994.

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18

Naaijkens, Pieter. Quantum Spin Systems on Infinite Lattices. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-51458-1.

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19

Ishizuka, Hiroaki. Magnetism and Transport Phenomena in Spin-Charge Coupled Systems on Frustrated Lattices. Tokyo: Springer Japan, 2015. http://dx.doi.org/10.1007/978-4-431-55663-3.

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20

Girlich, Dieter. Multikernresonanzuntersuchungen zur molekularen Dynamik wässriger Saccharidlösungen. Regensburg: S. Roderer, 1992.

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21

Spectroscopic techniques and hindered molecular motion. Boca Raton: CRC Press, 2012.

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22

Clark, John W., and Manfred L. Ristig, eds. Theory of Spin Lattices and Lattice Gauge Models. Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/bfb0104298.

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23

Standley, K. J. Electron Spin Relaxation Phenomena in Solids. Springer London, Limited, 2013.

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24

Knolle, Johannes. Dynamics of a Quantum Spin Liquid. Springer, 2018.

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25

Knolle, Johannes. Dynamics of a Quantum Spin Liquid. Springer, 2016.

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26

Knolle, Johannes. Dynamics of a Quantum Spin Liquid. Springer London, Limited, 2016.

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27

(Editor), R. Kossowsky, Shyamalendu Bose (Editor), Vladimir Pan (Editor), and Zafer Durusoy (Editor), eds. Physics and Materials Science of Vortex States, Flux Pinning and Dynamics (NATO Science Series E: (closed)). Springer, 1999.

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28

Glazov, M. M. Electron Spin Decoherence by Nuclei. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198807308.003.0007.

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The discussion of the electron spin decoherence and relaxation phenomena via the hyperfine interaction with host lattice spins is presented here. The spin relaxation processes processes limit the conservation time of spin states as well as the response time of the spin system to external perturbations. The central spin model, where the spin of charge carrier interacts with the bath of nuclear spins, is formulated. We also present different methods to calculate the spin dynamics within this model. Simple but physically transparent semiclassical treatment where the nuclear spins are considered as largely static classical magnetic moments is followed by more advanced quantum mechanical approach where the feedback of electron spin dynamics on the nuclei is taken into account. The chapter concludes with an overview of experimental data and its comparison with model calculations.
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29

Theory of Spin Lattices and Lattice Gauge Models: Proceedings of the 165th We-Heraeus-Seminar Held at the Physikzentrum Bad Honnef, Germany, 14-16 October 1996 (Lecture Notes in Physics). Springer, 1997.

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30

Theory of Spin Lattices and Lattice Gauge Models: Proceedings of the 165th WE-Heraeus-Seminar Held at Physikzentrum Bad Honnef, Germany, 14-16 October 1996. Springer Berlin / Heidelberg, 2014.

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31

Ishizuka, Hiroaki. Magnetism and Transport Phenomena in Spin-Charge Coupled Systems on Frustrated Lattices. Springer, 2016.

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32

Ishizuka, Hiroaki. Magnetism and Transport Phenomena in Spin-Charge Coupled Systems on Frustrated Lattices. Springer, 2015.

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33

Ishizuka, Hiroaki. Magnetism and Transport Phenomena in Spin-Charge Coupled Systems on Frustrated Lattices. Springer, 2015.

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34

Kruk, Danuta. Understanding Spin Dynamics. Jenny Stanford Publishing, 2015.

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35

Kruk, Danuta. Understanding Spin Dynamics. Jenny Stanford Publishing, 2015.

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36

Kubo, R., and E. Hanamura. Relaxation of Elementary Excitations. Springer, 2011.

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37

Cao, Gang, and Lance DeLong. Physics of Spin-Orbit-Coupled Oxides. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780199602025.001.0001.

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Prior to 2010, most research on the physics and chemistry of transition metal oxides was dominated by compounds of the 3d-transition elements such as Cr, Mn, Fe, Co, Ni, and Cu. These materials exhibited novel, important phenomena that include giant magnetoresistance in manganites, as well as high-temperature superconductivity in doped La2CuO4 and related cuprates. The discovery in 1994 of an exotic superconducting state in Sr2RuO4 shifted some interest toward ruthenates. Moreover, the realization in 2008 that a novel variant of the classic Mott metal-insulator transition was at play in Sr2IrO4 provided the impetus for a burgeoning group of studies of the influence of strong spin-orbit interactions in “heavy” (4d- and 5d-) transition-element oxides. This book reviews recent experimental and theoretical evidence that the physical and structural properties of 4d- and 5d-oxides are decisively influenced by strong spin-orbit interactions that compete or collaborate with comparable Coulomb, magnetic exchange, and crystalline electric field interactions. The combined effect leads to unusual ground states and magnetic frustration that are unique to this class of materials. Novel couplings between the orbital/lattice and spin degrees of freedom, which lead to unusual types of magnetic order and other exotic phenomena, challenge current theoretical models. Of particular interest are recent investigations of iridates and ruthenates focusing on strong spin-orbit interactions that couple the lattice and spin degrees of freedom.
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38

Sankari, Hassan M. Application of the NMR spin-lattice relaxation method to the structure of pigment systems. 1994.

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39

Meintjes, Ernesta M. Impurity NMR study of heavily phosphorus-dopes silicon. 1998.

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40

(Editor), R. Kossowsky, Shyamalendu Bose (Editor), Vladimir Pan (Editor), and Zafer Durusoy (Editor), eds. Physics and Materials Science of Vortex States, Flux Pinning and Dynamics (NATO Science Series E:). Springer, 1999.

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41

Tauskela, Joseph S. ©ℓ rp spin-lattice relaxation NMR spectroscopic studies of phosphatidylcholine vesicular bilayers and their interaction with concanavalin A. 1989.

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42

Naaijkens, Pieter. Quantum Spin Systems on Infinite Lattices: A Concise Introduction. Springer, 2017.

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43

Bashirov, Ferid. Spectroscopic Techniques and Hindered Molecular Motion. Taylor & Francis Group, 2011.

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44

Bashirov, Ferid. Spectroscopic Techniques and Hindered Molecular Motion. Taylor & Francis Group, 2011.

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45

Bashirov, Ferid. Spectroscopic Techniques and Hindered Molecular Motion. Taylor & Francis Group, 2011.

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46

Bashirov, Ferid. Spectroscopic Techniques and Hindered Molecular Motion. Taylor & Francis Group, 2019.

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47

Howlett, Robert J., Carlos Toro, and Manuel Grana. Knowledge Engineering, Machine Learning and Lattice Computing with Applications: 16th International Conference, KES 2012, San Sebastian, Spain, September 10-12, 2012, Revised Selected Papers. Springer, 2013.

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48

Jain, Lakhmi C., Robert J. Howlett, Carlos Toro, and Manuel Grana. Knowledge Engineering, Machine Learning and Lattice Computing with Applications: 16th International Conference, KES 2012, San Sebastian, Spain, September 10-12, 2012, Revised Selected Papers. Springer, 2013.

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49

Morawetz, Klaus. Interacting Systems far from Equilibrium. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198797241.001.0001.

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In quantum statistics based on many-body Green’s functions, the effective medium is represented by the selfenergy. This book aims to discuss the selfenergy from this point of view. The knowledge of the exact selfenergy is equivalent to the knowledge of the exact correlation function from which one can evaluate any single-particle observable. Complete interpretations of the selfenergy are as rich as the properties of the many-body systems. It will be shown that classical features are helpful to understand the selfenergy, but in many cases we have to include additional aspects describing the internal dynamics of the interaction. The inductive presentation introduces the concept of Ludwig Boltzmann to describe correlations by the scattering of many particles from elementary principles up to refined approximations of many-body quantum systems. The ultimate goal is to contribute to the understanding of the time-dependent formation of correlations. Within this book an up-to-date most simple formalism of nonequilibrium Green’s functions is presented to cover different applications ranging from solid state physics (impurity scattering, semiconductor, superconductivity, Bose–Einstein condensation, spin-orbit coupled systems), plasma physics (screening, transport in magnetic fields), cold atoms in optical lattices up to nuclear reactions (heavy-ion collisions). Both possibilities are provided, to learn the quantum kinetic theory in terms of Green’s functions from the basics using experiences with phenomena, and experienced researchers can find a framework to develop and to apply the quantum many-body theory straight to versatile phenomena.
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