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TMF, 1997, Volume 111, Number 3, Pages 439–451 (Mi tmf1020)  

This article is cited in 10 scientific papers (total in 10 papers)

Electron-phonon interaction of strong correlated systems

V. A. Moskalenko

Institute of Applied Physics Academy of Sciences of Moldova

Abstract: The Hubbard–Holstein model after Canonical Lang–Firsov transformation is investigated. Two peculiarities of the model are taken into account: the strong electron correlations and the fact that the hopping of polarons between lattice sites are accompanied by an unrestricted number of phonons. A new diagram technique based on the classification of irreducible multi-particle Green functions is developed. A theorem about the Connected Vacuum diagrams is established and the Dyson equation for the electron Green functions is obtained.

DOI: https://doi.org/10.4213/tmf1020

Full text: PDF file (282 kB)
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English version:
Theoretical and Mathematical Physics, 1997, 111:3, 744–753

Bibliographic databases:

Received: 02.12.1996

Citation: V. A. Moskalenko, “Electron-phonon interaction of strong correlated systems”, TMF, 111:3 (1997), 439–451; Theoret. and Math. Phys., 111:3 (1997), 744–753

Citation in format AMSBIB
\Bibitem{Mos97}
\by V.~A.~Moskalenko
\paper Electron-phonon interaction of strong correlated systems
\jour TMF
\yr 1997
\vol 111
\issue 3
\pages 439--451
\mathnet{http://mi.mathnet.ru/tmf1020}
\crossref{https://doi.org/10.4213/tmf1020}
\transl
\jour Theoret. and Math. Phys.
\yr 1997
\vol 111
\issue 3
\pages 744--753
\crossref{https://doi.org/10.1007/BF02634062}
\isi{http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&DestLinkType=FullRecord&DestApp=ALL_WOS&KeyUT=A1997YC44100010}


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    This publication is cited in the following articles:
    1. V. A. Moskalenko, “Electron-phonon interaction of strongly correlated systems. II. Strong coupling limit”, Theoret. and Math. Phys., 113:3 (1997), 1559–1563  mathnet  crossref  crossref  isi
    2. Loktev, VM, “Order parameter fluctuations and superconducting transition temperature in quasi-2D metals with arbitrary carrier density”, Low Temperature Physics, 24:8 (1998), 578  crossref  adsnasa  isi  scopus  scopus  scopus
    3. Moskalenko, VA, “Strong interaction of correlated electrons with phonons: A diagrammatic approach”, Physical Review B, 59:1 (1999), 619  crossref  mathscinet  adsnasa  isi  scopus  scopus  scopus
    4. Palistrant, ME, “Superconducting transition temperature and isotope exponent in superconductors with low Fermi energies”, Low Temperature Physics, 26:6 (2000), 407  crossref  adsnasa  isi  scopus  scopus  scopus
    5. Moskalenko, VA, “Strong interaction of correlated electrons with phonons: Exchange of phonon clouds by polarons”, Journal of Experimental and Theoretical Physics, 97:3 (2003), 632  crossref  adsnasa  isi  scopus  scopus  scopus
    6. Moskalenko, VA, “Strong interaction of correlated electrons with acoustical phonons using the extended Hubbard-Holstein model”, Physical Review B, 74:7 (2006), 075109  crossref  zmath  adsnasa  isi  elib  scopus  scopus  scopus
    7. Moskalenka, VA, “Interaction of strongly correlated electrons and acoustical phonons”, Low Temperature Physics, 32:4–5 (2006), 462  crossref  adsnasa  isi  scopus  scopus  scopus
    8. Kharrasov M.Kh., Kyzyrgulov I.R., Khusainov A.T., “Electron-Phonon Interaction in a Spatially Disordered System with a Strong Interelectron Correlation”, Physics of Metals and Metallography, 111:2 (2011), 123–132  crossref  mathscinet  adsnasa  isi  scopus  scopus  scopus
    9. Kharrasov M.Kh., Kyzyrgulov I.R., Khusainov A.T., “Elektron-fononnoe vzaimodeistvie v prostranstvenno neuporyadochennoi sisteme s silnoi mezhelektronnoi korrelyatsiei”, Fizika metallov i metallovedenie, 111:2 (2011), 126–135  elib
    10. V. A. Moskalenko, L. A. Dohotaru, D. F. Digor, I. D. Chebotar', “Dynamics of phonon clouds of correlated polarons”, Theoret. and Math. Phys., 179:2 (2014), 588–595  mathnet  crossref  crossref  adsnasa  isi  elib
  • Теоретическая и математическая физика Theoretical and Mathematical Physics
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