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1

Iachello, F. The interacting Boson-Fermion model. Cambridge [England]: Cambridge University Press, 1991.

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2

Kopietz, Peter. Bosonization of interacting fermions in arbitrary dimensions. Berlin: Springer, 1997.

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3

1940-, Szytuła Andrzej, ed. Valence fluctuations and heavy fermions. Kraków: Nakł. Uniwersytetu Jagiellońskiego, 1990.

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4

Wojciechowski, Ryszard J. Thermodynamic and elastic properties of heavy fermion systems in the normal state. Poznań: Wydawn. Nauk. Uniwersytetu im. Adama Mickiewica w Poznaniu, 1994.

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5

Tursunov, O. O. Numerical simulation of Fermi systems. Novosibirsk: Institute of Nuclear Physics, 1988.

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6

Zhirov, O. V. Probabilistic simulation of fermion paths. Novosibirsk: Institute of Nuclear Physics, 1989.

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7

Vorov, O. K. On the effective "chiral dynamics" in the problem of a large amplitude collective motion in a finite Fermi-system. Novosibirsk: Institute of Nuclear Physics, 1988.

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8

Martín, Laura Ortiz. Topological Orders with Spins and Fermions. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-23649-6.

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9

Hewson, A. C. The Kondo problem to heavy fermions. Cambridge: Cambridge University Press, 1993.

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10

Welp, Ulrich. Heavy fermion behaviour and magnetism in CeB r, CePb r and Ucu r. Konstanz: Hartung-Gorre, 1989.

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11

Kuraev, E. A. Countribution of fermionic loops to the muon anomalous magnetic moment. Novosibirsk: Institute of Nuclear Physics, 1989.

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12

Will, Sebastian. From atom optics to quantum simulation: Interacting bosons and fermions in three-dimensional optical lattice potentials. Berlin: Springer, 2013.

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13

Mitrjushkin, V., e G. Schierholz, eds. Lattice Fermions and Structure of the Vacuum. Dordrecht: Springer Netherlands, 2000. http://dx.doi.org/10.1007/978-94-011-4124-6.

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14

Kopietz, Peter. Bosonization of Interacting Fermions in Arbitrary Dimensions. Berlin, Heidelberg: Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/978-3-540-68495-4.

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15

Kasuya, Tadao, e Tetsuro Saso, eds. Theory of Heavy Fermions and Valence Fluctuations. Berlin, Heidelberg: Springer Berlin Heidelberg, 1985. http://dx.doi.org/10.1007/978-3-642-82618-4.

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16

Mitrjushkin, V. Lattice Fermions and Structure of the Vacuum. Dordrecht: Springer Netherlands, 2000.

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17

V, Mitrjushkin, Schierholz G e NATO Advanced Research Workshop on Lattice Fermions and Structure of the Vacuum (1999 : Dubna, Chekhovskiĭ raĭon, Russia), eds. Lattice fermions and structure of the vacuum. Dordrecht: Kluwer Academic Publishers, 2000.

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18

V, Mitrjushkin, Schierholz G e NATO Advanced Research Workshop on Lattice Fermions and Structure of the Vacuum (1999 : Dubna, Chekhovskiĭ raĭon, Russia), eds. Lattice fermions and structure of the vacuum. Dordrecht: Kluwer Academic Publishers, 2000.

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19

Bonora, Loriano. Fermions and Anomalies in Quantum Field Theories. Cham: Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-21928-3.

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20

Satō, Noriaki. Jisei to chōdendō no butsuri: Omoi denshikei no rikai no tame ni = Heavy fermion physics : magnetism and superconductivity. Nagoya-shi: Nagoya Daigaku Shuppankai, 2013.

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21

France, Société mathématique de, ed. Creation of fermions by rotating charged black holes. Paris: Société mathématique de France, 2009.

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22

Workshop, on Fermion Algorithms (1991 Jülich Germany). Workshop on Fermion Algorithms: April 10-12, 1991, HLRZ, KFA Jülich, Germany. Singapore: World Scientific, 1991.

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23

Miśrā, Praśānta. Heavy-fermion systems. Amsterdam: Elsevier, 2008.

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24

Esteban, Roulet, Tommasini Daniele e United States. National Aeronautics and Space Administration., eds. Global analysis of fermion mixing with exotics. [Batavia, Ill.?]: Fermi National Accelerator Laboratory, 1991.

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25

Göres, Jörn. Correlation effects in 2-dimensional electron systems: Composite fermions and electron liquid crystals. Stuttgart: Max-Planck-Institut für Festkörperforschung, 2004.

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26

Zhang, Shiwei. Exact Monte Carlo calculations for fermions on a parallel machine. Ithaca, N.Y: Cornell Theory Center, Cornell University, 1993.

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27

Gupta, L. C., e S. K. Malik, eds. Theoretical and Experimental Aspects of Valence Fluctuations and Heavy Fermions. Boston, MA: Springer US, 1987. http://dx.doi.org/10.1007/978-1-4613-0947-5.

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28

Lerner, I. V., B. L. Althsuler, V. I. Fal’ko e T. Giamarchi, eds. Strongly Correlated Fermions and Bosons in Low-Dimensional Disordered Systems. Dordrecht: Springer Netherlands, 2002. http://dx.doi.org/10.1007/978-94-010-0530-2.

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29

Lerner, I. V. Strongly Correlated Fermions and Bosons in Low-Dimensional Disordered Systems. Dordrecht: Springer Netherlands, 2002.

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30

1952-, Jacak Lucjan, e Politechnika Wrocławska Instytut Fizyki, eds. Anyons, braid groups, composite fermions, and fractional quantum Hall systems. Wrocław: Oficyna Wydawnicza Politechniki Wrocławskiej, 2002.

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31

Heinonen, O. Composite Fermions. WORLD SCIENTIFIC, 1998. http://dx.doi.org/10.1142/3894.

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32

Composite Fermions. Cambridge University Press, 2007.

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33

Jain, Jainendra K. Composite Fermions. Cambridge University Press, 2003.

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34

Jain, Jainendra K. Composite Fermions. Cambridge University Press, 2007.

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35

Jain, Jainendra K. Composite Fermions. Cambridge University Press, 2009.

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36

Jain, Jainendra K. Composite Fermions. Cambridge University Press, 2007.

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37

Jain, Jainendra K. Composite Fermions. Cambridge University Press, 2012.

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38

Composite Fermions. Cambridge University Press, 2007.

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39

The Great Silence: Science and Philosophy of Fermi's Paradox. Oxford University Press, 2018.

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40

Isacker, P. van, e F. Iachello. The Interacting Boson-Fermion Model (Cambridge Monographs on Mathematical Physics). Cambridge University Press, 2005.

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41

Isacker, P. van, e F. Iachello. Interacting Boson-Fermion Model. Cambridge University Press, 2009.

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42

Isacker, P. van, e F. Iachello. Interacting Boson-Fermion Model. Cambridge University Press, 2011.

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43

Ahluwalia, Dharam. Mass Dimension One Fermions. Cambridge University Press, 2019.

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44

Baulieu, Laurent, John Iliopoulos e Roland Sénéor. Fermions and Functional Formalism. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198788393.003.0011.

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The introduction of spinor fields and the problem of the positivity of the energy. Need for anti-commutators. Calculus in a Grassmannian manifold, the Berezin integral. Clifford algebras. Quantum mechanics and quantum field theory with fermions. The use of path integrals.
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45

Ahluwalia, Dharam. Mass Dimension One Fermions. Cambridge University Press, 2019.

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46

Ahluwalia, Dharam. Mass Dimension One Fermions. Cambridge University Press, 2019.

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47

Onuki, Yoshichika. Physics of Heavy Fermions: Heavy Fermions and Strongly Correlated Electrons Systems. World Scientific Publishing Co Pte Ltd, 2018.

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48

Hewson, Alexander Cyril. Kondo Problem to Heavy Fermions. Cambridge University Press, 2009.

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49

Li, Y. Y., e J. F. Jia. Topological Superconductors and Majorana Fermions. Editado por A. V. Narlikar. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780198738169.013.6.

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This article discusses recent developments relating to the so-called topological superconductors (TSCs), which have a full pairing gap in the bulk and gapless surface states consisting of Majorana fermions (MFs). It first provides a background on topological superconductivity as a novel quantum state of matter before turning to topological insulators (TIs) and superconducting heterostructures, with particular emphasis on the vortices of such materials and the Majorana mode within a vortex. It also considers proposals for realizing TSCs by proximity effects through TI/SC heterostructures as well as experimental efforts to fabricate artificial TSCs using nanowires, superconducting junctions, and ferromagnetic atomic chains on superconductors.
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50

Kachelriess, Michael. Fermions and the Dirac equation. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198802877.003.0008.

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Starting from the spinor representation of the Lorentz group,Weyl spinors and their transformation properties are derived. The Dirac equation and the properties of its solutions are discussed. Graßmann numbers and the gener-ating functional for fermions are introduced. Weyl and Majorana fermions are examined.
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