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Energy Spectrum and Phase Transition of Superfluid Fermi Gas of Atoms on Noncommutative Space

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dc.contributor.author Miao, Yan-Gang
dc.contributor.author Wang, H.
dc.date.accessioned 2019-02-10T10:08:20Z
dc.date.available 2019-02-10T10:08:20Z
dc.date.issued 2014
dc.identifier.citation Energy Spectrum and Phase Transition of Superfluid Fermi Gas of Atoms on Noncommutative Space / Yan-Gang Miao, H. Wang // Symmetry, Integrability and Geometry: Methods and Applications. — 2014. — Т. 10. — Бібліогр.: 41 назв. — англ. uk_UA
dc.identifier.issn 1815-0659
dc.identifier.other 2010 Mathematics Subject Classification: 53D55; 81T75; 82D55
dc.identifier.other DOI:10.3842/SIGMA.2014.075
dc.identifier.uri http://dspace.nbuv.gov.ua/handle/123456789/146617
dc.description.abstract Based on the Bogoliubov non-ideal gas model, we discuss the energy spectrum and phase transition of the superfluid Fermi gas of atoms with a weak attractive interaction on the canonical noncommutative space. Because the interaction of a BCS-type superfluid Fermi gas originates from a pair of Fermionic quasi-particles with opposite momenta and spins, the Hamiltonian of the Fermi gas on the noncommutative space can be described in terms of the ordinary creation and annihilation operators related to the commutative space, while the noncommutative effect appears only in the coefficients of the interacting Hamiltonian. As a result, we can rigorously solve the energy spectrum of the Fermi gas on the noncommutative space exactly following the way adopted on the commutative space without the use of perturbation theory. In particular, different from the previous results on the noncommutative degenerate electron gas and superconductor where only the first order corrections of the ground state energy level and energy gap were derived, we obtain the nonperturbative energy spectrum for the noncommutative superfluid Fermi gas, and find that each energy level contains a corrected factor of cosine function of noncommutative parameters. In addition, our result shows that the energy gap becomes narrow and the critical temperature of phase transition from a superfluid state to an ordinary fluid state decreases when compared with that in the commutative case. uk_UA
dc.description.sponsorship This paper is a contribution to the Special Issue on Deformations of Space-Time and its Symmetries. The full collection is available at http://www.emis.de/journals/SIGMA/space-time.html. Y.-G. Miao would like to thank J.-X. Lu of the Interdisciplinary Center for Theoretical Study (ICTS), University of Science and Technology of China (USTC) for warm hospitality where part of the work was performed. This work was supported in part by the National Natural Science Foundation of China under grant No. 11175090 and by the Ministry of Education of China under grant No. 20120031110027. At last, the authors would like to thank the anonymous referees and the editor for their helpful comments that indeed improve this work greatly. uk_UA
dc.language.iso en uk_UA
dc.publisher Інститут математики НАН України uk_UA
dc.relation.ispartof Symmetry, Integrability and Geometry: Methods and Applications
dc.title Energy Spectrum and Phase Transition of Superfluid Fermi Gas of Atoms on Noncommutative Space uk_UA
dc.type Article uk_UA
dc.status published earlier uk_UA


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