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ЖУРНАЛЫ // Теоретическая и математическая физика

ТМФ, 1988, том 75, номер 2, страницы 226–233 (Mi tmf4776)

Массивная модель Гросса–Невье в главном порядке $1/N$-разложения. Учет температуры и химического потенциала
К. Г. Клименко

Эта публикация цитируется в следующих статьяx:
  1. Adrian Koenigstein, Laurin Pannullo, “Inhomogeneous condensation in the Gross-Neveu model in noninteger spatial dimensions 1≤d<3 . II. Nonzero temperature and chemical potential”, Phys. Rev. D, 109:5 (2024)  crossref
  2. Tamaz Khunjua, Konstantin Klimenko, Roman Zhokhov, “Charged Pion Condensation in Dense Quark Matter: Nambu–Jona-Lasinio Model Study”, Symmetry, 11:6 (2019), 778  crossref
  3. T. G. Khunjua, K. G. Klimenko, R. N. Zhokhov, “Charged pion condensation and duality in dense and hot chirally and isospin asymmetric quark matter in the framework of the NJL2 model”, Phys. Rev. D, 100:3 (2019)  crossref
  4. T. G. Khunjua, K.G. Klimenko, R. N. Zhokhov–Larionov, V.E. Volkova, Y.V. Zhezher, D.G. Levkov, V.A. Rubakov, V.A. Matveev, “Affinity of NJL2 and NJL4 model results on duality and pion condensation in chiral asymmetric dense quark matter”, EPJ Web Conf., 191 (2018), 05016  crossref
  5. T. G. Khunjua, K. G. Klimenko, R. N. Zhokhov, V. C. Zhukovsky, “Inhomogeneous charged pion condensation in chiral asymmetric dense quark matter in the framework of a NJL2 model”, Phys. Rev. D, 95:10 (2017)  crossref
  6. D. Ebert, T. G. Khunjua, K. G. Klimenko, “Duality between chiral symmetry breaking and charged pion condensation at large Nc : Consideration of an NJL2 model with baryon, isospin, and chiral isospin chemical potentials”, Phys. Rev. D, 94:11 (2016)  crossref
  7. D. Ebert, T. G. Khunjua, K. G. Klimenko, V. Ch. Zhukovsky, “Competition and duality correspondence between inhomogeneous fermion-antifermion and fermion-fermion condensations in theNJL2model”, Phys. Rev. D, 90:4 (2014)  crossref
  8. V. Ch. Zhukovsky, K. G. Klimenko, T. G. Khunjua, “The effect of chiral density waves on the superconducting phase in the two-dimensional Gross-Neveu model”, Moscow Univ. Phys., 68:2 (2013), 105  crossref
  9. N. V. Gubina, K. G. Klimenko, S. G. Kurbanov, V. Ch. Zhukovsky, “Inhomogeneous charged pion condensation phenomenon in theNJL2model with quark number and isospin chemical potentials”, Phys. Rev. D, 86:8 (2012)  crossref
  10. D. EBERT, T. G. KHUNJUA, K. G. KLIMENKO, V. CH. ZHUKOVSKY, “CHARGED PION CONDENSATION PHENOMENON OF DENSE BARYONIC MATTER INDUCED BY FINITE VOLUME: THE NJL2 MODEL CONSIDERATION”, Int. J. Mod. Phys. A, 27:27 (2012), 1250162  crossref
  11. Ebert D., Gubina N.V., Klimenko K.G., Kurbanov S.G., Zhukovsky V.Ch., “Chiral density waves in the NJL(2) model with quark number and isospin chemical potentials”, Phys Rev D, 84:2 (2011), 025004  crossref  isi
  12. Daniel Fernandez-Fraile, “Bulk viscosity of the massive Gross-Neveu model”, Phys. Rev. D, 83:6 (2011)  crossref
  13. Heron Caldas, “An effective field theory model for one-dimensional CH chains: effects at finite chemical potential, temperature and external Zeeman magnetic field”, J. Stat. Mech., 2011:10 (2011), P10005  crossref
  14. V. Ch. Zhukovsky, K. G. Klimenko, T. G. Khunjua, “Pion condensation in the Gross-Neveu model”, Moscow Univ. Phys., 65:1 (2010), 21  crossref
  15. Heron Caldas, “Temperature effects on the magnetization of quasi-one-dimensional Peierls distorted materials”, J. Stat. Mech., 2010:03 (2010), P03027  crossref
  16. MASAKO HAYASHI, TOMOHIRO INAGAKI, WATARU SAKAMOTO, “PHASE STRUCTURE OF A FOUR- AND EIGHT-FERMION INTERACTION MODEL AT FINITE TEMPERATURE AND CHEMICAL POTENTIAL IN ARBITRARY DIMENSIONS”, Int. J. Mod. Phys. A, 25:25 (2010), 4757  crossref
  17. D. Ebert, K. G. Klimenko, “Properties of the massive Gross-Neveu model with nonzero baryon and isospin chemical potentials”, Phys. Rev. D, 80:12 (2009)  crossref
  18. D. Ebert, K. G. Klimenko, A. V. Tyukov, V. Ch. Zhukovsky, “Finite size effects in the Gross-Neveu model with isospin chemical potential”, Phys. Rev. D, 78:4 (2008)  crossref
  19. Oliver Schnetz, Michael Thies, Konrad Urlichs, “Full phase diagram of the massive Gross–Neveu model”, Annals of Physics, 321:11 (2006), 2604  crossref
  20. Joshua Feinberg, Shlomi Hillel, “Fermion bag solitons in the massive Gross–Neveu and massive Nambu–Jona–Lasinio models in 1+1 dimensions: inverse scattering analysis”, J. Phys. A: Math. Gen., 39:21 (2006), 6341  crossref
  21. Joshua Feinberg, Shlomi Hillel, “Stable fermion bag solitons in the massive Gross-Neveu model: Inverse scattering analysis”, Phys. Rev. D, 72:10 (2005)  crossref
  22. Alan Chodos, Fred Cooper, Wenjin Mao, Anupam Singh, “Equilibrium and nonequilibrium properties associated with the chiral phase transition at finite density in the Gross-Neveu model”, Phys. Rev. D, 63:9 (2001)  crossref
  23. Michele Modugno, “Thermodynamics of the Gross-Neveu model beyond the mean-field approximation”, Riv. Nuovo Cim., 23:5 (2000), 1  crossref
  24. Thomas Appelquist, Myck Schwetz, “The (2+1)-dimensional NJL model at finite temperature”, Physics Letters B, 491:3-4 (2000), 367  crossref
  25. Vshivtsev, AS, “Dynamical effects in (2+1)-dimensional theories with four-fermion interaction”, Physics of Particles and Nuclei, 29:5 (1998), 523  crossref  isi
  26. M. A. Vdovichenko, A. K. Klimenko, “Oscillation phenomena in polyacetylene: R 1×S 1 Gross-Neveu model with a chemical potential”, Jetp Lett., 68:5 (1998), 460  crossref
  27. Alan Chodos, Hisakazu Minakata, Lecture Notes in Physics, 508, Field Theoretical Tools for Polymer and Particle Physics, 1998, 231  crossref
  28. A. Barducci, R. Casalbuoni, M. Modugno, G. Pettini, R. Gatto, “Low temperature dominance of pionlike excitations in the massive Gross-Neveu model at order1/N”, Phys. Rev. D, 55:4 (1997), 2247  crossref
  29. Alan Chodos, Hisakazu Minakata, “The thermodynamic Bethe ansatz and the 1/N correction to the density phase transition in the Gross-Neveu model”, Nuclear Physics B, 490:3 (1997), 687  crossref
  30. P. Forgács, F. Niedermayer, P. Weisz, “The exact mass gap of the Gross-Neveu model (II). The 1/N expansion”, Nuclear Physics B, 367:1 (1991), 144  crossref


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