Academic literature on the topic 'Quantum and classical magnetism'

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Journal articles on the topic "Quantum and classical magnetism"

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Stewart, A. M. "Gauge Invariant Magnetism." Australian Journal of Physics 50, no. 6 (1997): 1061. http://dx.doi.org/10.1071/p97024.

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An introduction is given to features of gauge invariance in classical and quantum mechanics that are of importance for magnetism in condensed matter systems. A version of quantum mechanics is described in which full electromagnetic gauge arbitrariness is displayed explicitly at every stage. The division of orbital magnetism into paramagnetism and diamagnetism is examined and it is shown that only by treating both of these on an equal footing can a gauge invariant treatment of magnetism be constructed.
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Gider, S., D. D. Awschalom, T. Douglas, K. Wong, S. Mann, and G. Cain. "Classical and quantum magnetism in synthetic ferritin proteins." Journal of Applied Physics 79, no. 8 (1996): 5324. http://dx.doi.org/10.1063/1.361366.

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Cabral Neto, J., and J. Ricardo de Sousa. "Surface magnetism: phase transitions in quantum and classical models." Physica A: Statistical Mechanics and its Applications 319 (March 2003): 319–30. http://dx.doi.org/10.1016/s0378-4371(02)01520-0.

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Müller, Achim, Marshall Luban, Christian Schröder, et al. "Classical and Quantum Magnetism in Giant Keplerate Magnetic Molecules." ChemPhysChem 2, no. 8-9 (2001): 517–21. http://dx.doi.org/10.1002/1439-7641(20010917)2:8/9<517::aid-cphc517>3.0.co;2-1.

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Barbara, Bernard. "Mesoscopic systems: classical irreversibility and quantum coherence." Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 370, no. 1975 (2012): 4487–516. http://dx.doi.org/10.1098/rsta.2012.0218.

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Mesoscopic physics is a sub-discipline of condensed-matter physics that focuses on the properties of solids in a size range intermediate between bulk matter and individual atoms. In particular, it is characteristic of a domain where a certain number of interacting objects can easily be tuned between classical and quantum regimes, thus enabling studies at the border of the two. In magnetism, such a tuning was first realized with large-spin magnetic molecules called single-molecule magnets (SMMs) with archetype Mn 12 -ac. In general, the mesoscopic scale can be relatively large (e.g. micrometre-
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Struck, J., C. Olschlager, R. Le Targat, et al. "Quantum Simulation of Frustrated Classical Magnetism in Triangular Optical Lattices." Science 333, no. 6045 (2011): 996–99. http://dx.doi.org/10.1126/science.1207239.

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Ochoa, Hector, and Yaroslav Tserkovnyak. "Quantum skyrmionics." International Journal of Modern Physics B 33, no. 21 (2019): 1930005. http://dx.doi.org/10.1142/s0217979219300056.

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Skyrmions are topological solitons that emerge in many physical contexts. In magnetism, they appear as textures of the spin-density field stabilized by different competing interactions and characterized by a topological charge that counts the number of times the order parameter wraps the sphere. They behave as classical objects when the spin texture varies slowly on the scale of the microscopic lattice of the magnet. However, the fast development of experimental tools to create and stabilize skyrmions in thin magnetic films has led to a rich variety of textures, sometimes of atomistic sizes. I
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Scheie, Allen, Jonas Kindervater, Shu Zhang, et al. "Multiphase magnetism in Yb2Ti2O7." Proceedings of the National Academy of Sciences 117, no. 44 (2020): 27245–54. http://dx.doi.org/10.1073/pnas.2008791117.

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We use neutron scattering to show that ferromagnetism and antiferromagnetism coexist in the low T state of the pyrochlore quantum magnetYb2Ti2O7. While magnetic Bragg peaks evidence long-range static ferromagnetic order, inelastic scattering shows that short-range correlated antiferromagnetism is also present. Small-angle neutron scattering provides direct evidence for mesoscale magnetic structure that we associate with metastable antiferromagnetism. Classical Monte Carlo simulations based on exchange interactions inferred from⟨111⟩-oriented high-field spin wave measurements confirm that antif
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Philip Obande, Ogaba. "Classical Definitions of Gravitation, Electricity and Magnetism." Applied Physics Research 7, no. 6 (2015): 85. http://dx.doi.org/10.5539/apr.v7n6p85.

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&lt;p class="1Body"&gt;In further demonstration of simultaneous existence of the atom as wave and particle, we reproduce values of a number of physical constants using the classical mass equation hϑ = mc&lt;sup&gt;2&lt;/sup&gt;. Most, possibly all, physical constants are coefficients of linear correlations of parameters of the intrinsic electromagnetic (e-m) oscillation that defines the atom; for example: (i) angular frequency per unit radius ω/r correlates with rotational strain τ to produce the effect identified with atomic mass; (ii) the atomic waveform’s e-m flux density ρ&lt;sub&gt;w&lt;/
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Troiani, Filippo. "On the Use of Classical and Quantum Fisher Information in Molecular Magnetism." Magnetochemistry 2, no. 3 (2016): 33. http://dx.doi.org/10.3390/magnetochemistry2030033.

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Dissertations / Theses on the topic "Quantum and classical magnetism"

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Baez, Maria Laura [Verfasser]. "Numerical methods for frustrated magnetism : from quantum to classical spin systems / Maria Laura Baez." Berlin : Freie Universität Berlin, 2018. http://d-nb.info/1170876846/34.

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Debenham, Peter Mark. "Molecular rotation in the quantum and classical regions." Thesis, University of Nottingham, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.284053.

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Exler, Matthias. "On classical and quantum mechanical energy spectra of finite Heisenberg spin systems." Doctoral thesis, [S.l.] : [s.n.], 2006. http://deposit.ddb.de/cgi-bin/dokserv?idn=980110440.

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Du, Meng Li. "The effect of closed classical orbits on quantum spectra: Ionization of atoms in a magnetic field." W&M ScholarWorks, 1987. https://scholarworks.wm.edu/etd/1539623773.

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A quantitative theory of oscillatory spectra for atoms in a magnetic field is developed. When an atom is placed in a magnetic field, and absorption spectrum into states close to the ionization threshold is measured, it is found that the absorption as a function of energy is a superposition of many sinusoidal oscillations. Such interesting and surprising phenomenon are fully explained and described by the theory.;The theory is based on three approximations: (1) Near the atomic nucleus, the diamagnetic field is negligible. (2) Far from the nucleus, the wave propagates semiclassically. (3) Waves
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Chalopin, Thomas. "Quantum-enhanced sensing and synthetic Landau levels with ultracold dysprosium atoms Quantum-enhanced sensing using non-classical spin states of a highly magnetic atom Enhanced magnetic sensitivity with non-gaussian quantum fluctuations." Thesis, Sorbonne université, 2019. http://www.theses.fr/2019SORUS589.

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Cette thèse porte sur des études expérimentales basées sur les interactions entre photons et atomes ultrafroids de dysprosium. La structure électronique du dysprosium est à l'origine de ses propriétés atomiques singulières, donnant accès à une phénoménologie physique diversifiée. Dans la première partie, nous donnons une description globale de notre expérience, et du protocole expérimental qui permet la production de gaz dégénérés de dysprosium bosonique. Une étape importante de notre séquence expérimentale porte sur l'utilisation de la raie d'intercombinaison à 626 nm pour le refroidissement
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Elias, Ricardo. "Solitons magnétiques et transitions topologiques." Thesis, Aix-Marseille, 2013. http://www.theses.fr/2013AIXM4712/document.

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Dans cette thèse nous étudions théoriquement et numériquement les solitons magnétiques et leurs transitions topologiques. Dans une première partie, nous trouvons une solution en 3 dimensions appelée Point de Bloch qui vient de la minimisation de l'énergie d'échange, de l'énergie de Landau et de l'énergie dipolaire. Les oscillations autour du point de Bloch sont trouvées et quantifiées pour étudier le rôle des fluctuations quantiques dans sa stabilité.Dans une deuxième partie, nous regardons l'évolution d'un système ferromagnétique avec des textures de topologie non-triviale, couplé à des élect
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Rezakhanlou, Karen. "Orbital magnetism and quantum chaos /." [S.l.] : [s.n.], 1995. http://library.epfl.ch/theses/?nr=1312.

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Brambleby, Jamie. "Quantum magnetism in coordination polymers." Thesis, University of Warwick, 2018. http://wrap.warwick.ac.uk/111284/.

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This thesis presents an experimental and theoretical examination of five polymeric quantum magnets. The first of these is Cu(pyrazine)(glycinate)ClO4, an exchange-coupled spin-dimer system that undergoes a powerful and continuous magnetocaloric effect (MCE) in a rapidly changing magnetic field H. The evolution of the sample temperature T with H must be accounted for in order to reconcile an apparent discrepancy between the results of magnetometry measurements performed in quasistatic and pulsed magnetic fields, and the MCE is likely to be an important consideration for pulsed-field experiments
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Beamond, Eleanor. "Quantum and classical localisation." Thesis, University of Oxford, 2002. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.249185.

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Helm, Julius. "Classical vs. Quantum Decoherence." Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2012. http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-84542.

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Based on the superposition principle, any two states of a quantum system may be coherently superposed to yield a novel state. Such a simple construction is at the heart of genuinely quantum phenomena such as interference of massive particles or quantum entanglement. Yet, these superpositions are susceptible to environmental influences, eventually leading to a complete disappearance of the system's quantum character. In principle, two distinct mechanisms responsible for this process of decoherence may be identified. In a classical decoherence setting, on the one hand, stochastic fluctuations of
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Books on the topic "Quantum and classical magnetism"

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service), SpringerLink (Online, ed. The Classical Theory of Fields: Electromagnetism. Springer Berlin Heidelberg, 2012.

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Bernard, Barbara, ed. Quantum magnetism. Springer, 2008.

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Barbara, Bernard, Yosef Imry, G. Sawatzky, and P. C. E. Stamp, eds. Quantum Magnetism. Springer Netherlands, 2008. http://dx.doi.org/10.1007/978-1-4020-8512-3.

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Schollwöck, Ulrich, Johannes Richter, Damian J. J. Farnell, and Raymod F. Bishop, eds. Quantum Magnetism. Springer Berlin Heidelberg, 2004. http://dx.doi.org/10.1007/b96825.

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Anupuru, Ramakanth, and SpringerLink (Online service), eds. Quantum theory of magnetism. Springer, 2009.

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White, Robert M. Quantum Theory of Magnetism. Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/978-3-540-69025-2.

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Nolting, Wolfgang, and Anupuru Ramakanth. Quantum Theory of Magnetism. Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-540-85416-6.

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1907-, Phillips Melba, ed. Classical electricity and magnetism. 2nd ed. Dover Publications, 2005.

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Auerbach, Assa. Interacting electrons and quantum magnetism. Springer-Verlag, 1994.

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Auerbach, Assa. Interacting Electrons and Quantum Magnetism. Springer New York, 1994. http://dx.doi.org/10.1007/978-1-4612-0869-3.

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Book chapters on the topic "Quantum and classical magnetism"

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Richter, Johannes, Jörg Schulenburg, and Andreas Honecker. "Quantum magnetism in two dimensions: From semi-classical Néel order to magnetic disorder." In Quantum Magnetism. Springer Berlin Heidelberg, 2004. http://dx.doi.org/10.1007/bfb0119592.

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Fai, Lukong Cornelius. "Classical and Quantum Theory of Magnetism." In Quantum Field Theory. CRC Press, 2019. http://dx.doi.org/10.1201/9780429196942-13.

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Lechner, Kurt. "Magnetic Monopoles in Quantum Mechanics." In Classical Electrodynamics. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-91809-9_21.

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Dittrich, Walter, and Martin Reuter. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-21677-5_22.

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Dittrich, Walter, and Martin Reuter. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/978-3-642-97921-7_20.

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Dittrich, W., and Martin Reutera. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer Berlin Heidelberg, 2001. http://dx.doi.org/10.1007/978-3-642-56430-7_22.

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Dittrich, Walter, and Martin Reuter. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-36786-2_22.

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Dittrich, Walter, and Martin Reuter. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-58298-6_22.

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Dittrich, Walter, and Martin Reuter. "Propagators for Particles in an External Magnetic Field." In Classical and Quantum Dynamics. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-97465-6_20.

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Dittrich, Walter, and Martin Reuter. "Green’s Function of a Spin- 1 2 $$\tfrac {1}{2}$$ Particle in a Constant External Magnetic Field." In Classical and Quantum Dynamics. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-36786-2_39.

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Conference papers on the topic "Quantum and classical magnetism"

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Kramer, Tobias. "Interacting electrons in a magnetic field: Mapping quantum mechanics to a classical ersatz-system." In BEAUTY IN PHYSICS: THEORY AND EXPERIMENT: In honor of Francesco Iachello on the occasion of his 70th birthday. AIP, 2012. http://dx.doi.org/10.1063/1.4759422.

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Mahecha, J., and J. P. Salas. "Quantum and Classical Description of H Atom Under Magnetic Field and Quadrupole Trap Potential." In THE PHYSICS OF IONIZED GASES: 23rd Summer School and International Symposium on the Physics of Ionized Gases; Invited Lectures, Topical Invited Lectures and Progress Reports. AIP, 2006. http://dx.doi.org/10.1063/1.2406018.

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Murguía, Gabriela, Matías Moreno, and Manuel Torres. "Perturbative Quantum Analysis and Classical Limit of the Electron Scattering by a Solenoidal Magnetic Field." In PARTICLES AND FIELDS. ASCE, 2009. http://dx.doi.org/10.1063/1.3131576.

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VISINESCU, A., and M. VISINESCU. "BIANCHI TYPE-I COSMOLOGICAL STRING MODEL IN THE PRESENCE OF A MAGNETIC FIELD: CLASSICAL AND QUANTUM LOOP APPROACHES." In Proceedings of the MG12 Meeting on General Relativity. WORLD SCIENTIFIC, 2012. http://dx.doi.org/10.1142/9789814374552_0248.

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Popkov, Vyacheslav, Alexander Sterenberg, Vladimir Gusev, and Andrey Tyutyaev. "COGNITIVE GEOLOGY OF SUPERIMPOSED SCATTERING OF MOBILE ORE ELEMENTS, PROPER FORMS OF MULTISCALE STRUCTURAL STRESS STABILITY, BIOGENETIC ACCESS CODE OF RESOURCES AND FIELD ARTEFACTS." In GEOLINKS International Conference. SAIMA Consult Ltd, 2020. http://dx.doi.org/10.32008/geolinks2020/b1/v2/11.

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The authors present the theory is numerical / analytical method of multi-scaled 4D geomechanics – geo-dynamics of energy integration in geo-physical rhythms of Eigen-solution of Navier-Stokes equations for multi-level geological time space of evolution in structural compacted mass transfer at the basis of Newton’s Differential Law ∫V∫TρdS·∂2ξ/∂t2 following the integration formula of A. Einstein E(u,t)=ρVC2+∫V∫Tρ‹uv›dtdx. Сreate the theory (Restoration) and Maintenance of Water Eco-System with Given Parameters. They establish the geophysical seismic rhythms of geological cycles in deep structur
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Oliveira, Samuel L., and Stephen C. Rand. "Optical magnetism." In 2007 Quantum Electronics and Laser Science Conference. IEEE, 2007. http://dx.doi.org/10.1109/qels.2007.4431630.

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Kosyakov, B. P. "Subnuclear realm: classical in quantum and quantum in classical." In MYSTERIES, PUZZLES AND PARADOXES IN QUANTUM MECHANICS. ASCE, 1999. http://dx.doi.org/10.1063/1.57884.

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Kimel, A. V., A. Kirilyuk, and Th Rasing. "Femtosecond opto-magnetism." In 2007 Quantum Electronics and Laser Science Conference. IEEE, 2007. http://dx.doi.org/10.1109/qels.2007.4431810.

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Haas, Stephan, Adolfo Avella, and Ferdinando Mancini. "Quantum Magnetism, Nanomagnets and Entanglement." In LECTURES ON THE PHYSICS OF STRONGLY CORRELATED SYSTEMS XII: Twelfth Training Course in the Physics of Strongly Correlated Systems. AIP, 2008. http://dx.doi.org/10.1063/1.2940446.

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Degen, Christian, and Pol Welter. "Quantum microscopy of nanoscale magnetism." In Spintronics XIV, edited by Henri-Jean M. Drouhin, Jean-Eric Wegrowe, and Manijeh Razeghi. SPIE, 2021. http://dx.doi.org/10.1117/12.2597939.

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Reports on the topic "Quantum and classical magnetism"

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Awschalom, David D. Classical and Quantum Properties of Magnetic Nanostructures. Defense Technical Information Center, 1998. http://dx.doi.org/10.21236/ada386964.

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Joseph, Ilon. Quantum Representation of Classical Dynamics. Office of Scientific and Technical Information (OSTI), 2018. http://dx.doi.org/10.2172/1498458.

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Valiant, Leslie G. Classical Simulation of Quantum Computations. Defense Technical Information Center, 2005. http://dx.doi.org/10.21236/ada441205.

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Ritchie, A. B., and C. A. Weatherford. Quantum-Classical Correspondence in Nonrelativistic Electrodynamics. Office of Scientific and Technical Information (OSTI), 1999. http://dx.doi.org/10.2172/793702.

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Lee, Minhyea. Transport Studies of Quantum Magnetism: Physics and Methods. Office of Scientific and Technical Information (OSTI), 2017. http://dx.doi.org/10.2172/1349030.

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Zurek, Wojciech H. Quantum Theory of the Classical: Einselection, Envariance, and Quantum Darwinism. Office of Scientific and Technical Information (OSTI), 2013. http://dx.doi.org/10.2172/1073733.

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Balatsky, Alexander V., Sven Bjarke Gudnason, Larus Thorlacius, Konstantin Zarembo, Alexander Krikun, and Yaron Kedem. Classical and quantum temperature fluctuations via holography. Office of Scientific and Technical Information (OSTI), 2014. http://dx.doi.org/10.2172/1133316.

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Marmo, Giuseppe, Giovanni Sparano, and Gaetano Vilasi. Classical and Quantum Symmetries Reduction and Integrability. Journal of Geometry and Symmetry in Physics, 2013. http://dx.doi.org/10.7546/jgsp-31-2013-105-117.

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CURRO, JOHN G., FRANK B. VAN SWOL, RICHARD M. FYE, et al. Integrated Quantum/Classical Modeling of Hydrogenic Materials. Office of Scientific and Technical Information (OSTI), 1999. http://dx.doi.org/10.2172/15158.

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Sone, Akira. Precision sensing assisted by quantum-classical computation. Office of Scientific and Technical Information (OSTI), 2020. http://dx.doi.org/10.2172/1660582.

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