Bosonic Spectral Function and the Electron-Phonon Interaction in HTSC Cuprates

被引:42
|
作者
Maksimov, E. G. [4 ]
Kulic, M. L. [1 ,2 ]
Dolgov, O. V. [3 ]
机构
[1] Goethe Univ Frankfurt, Inst Theoret Phys, D-60438 Frankfurt, Germany
[2] Max Born Inst Nichtlineare Opt & Kurzzeitspektros, D-12489 Berlin, Germany
[3] Max Planck Inst Festkorperphys, Theoret Abt, D-70569 Stuttgart, Germany
[4] PN Lebedev Phys Inst, IE Tamm Theoret Dept, Moscow 119991, Russia
关键词
T-C SUPERCONDUCTORS; DENSITY-OF-STATES; TUNNELING CONDUCTANCE; INFRARED PROPERTIES; SPIN EXCITATIONS; TEMPERATURE SUPERCONDUCTIVITY; PSEUDOGAP STATE; OPTICAL-SPECTRA; HUBBARD-MODEL; ARPES SPECTRA;
D O I
10.1155/2010/423725
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
In this paper we discuss experimental evidence related to the structure and origin of the bosonic spectral function alpha F-2(omega) in high-temperature superconducting (HTSC) cuprates at and near optimal doping. Global properties of alpha F-2(omega), such as number and positions of peaks, are extracted by combining optics, neutron scattering, ARPES and tunnelling measurements. These methods give evidence for strong electron-phonon interaction (EPI) with 1 < lambda(ep) less than or similar to 3.5 in cuprates near optimal doping. We clarify how these results are in favor of the modified Migdal-Eliashberg (ME) theory for HTSC cuprates near optimal doping. In Section 2 we discuss theoretical ingredients-such as strong EPI, strong correlations-which are necessary to explain the mechanism of d-wave pairing in optimally doped cuprates. These comprise the ME theory for EPI in strongly correlated systems which give rise to the forward scattering peak. The latter is supported by the long-range part of EPI due to the weakly screened Madelung interaction in the ionic-metallic structure of layered HTSC cuprates. In this approach EPI is responsible for the strength of pairing while the residual Coulomb interaction and spin fluctuations trigger the d-wave pairing.
引用
收藏
页数:64
相关论文
共 50 条
  • [41] ELECTRON-PHONON INTERACTION IN METALS
    BARDEEN, J
    PINES, D
    PHYSICAL REVIEW, 1955, 99 (04): : 1140 - 1150
  • [42] ELECTRON-PHONON INTERACTION IN TELLURIUM
    BRAUNE, W
    HERRMANN, R
    HERRMANN, K
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1972, 49 (02): : 547 - &
  • [43] SUPERCONDUCTIVITY AND ELECTRON-PHONON INTERACTION
    BUCKEL, W
    ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE-WIESBADEN, 1979, 116 : 135 - 147
  • [44] ELECTRON-PHONON INTERACTION IN LAAG
    NIKSCH, M
    LUTHI, B
    KUBLER, J
    ZEITSCHRIFT FUR PHYSIK B-CONDENSED MATTER, 1987, 68 (2-3): : 291 - 298
  • [45] RELATIVISTIC ELECTRON-PHONON INTERACTION
    GLOCKER, R
    FRITSCHE, L
    SOLID STATE COMMUNICATIONS, 1978, 25 (12) : 1117 - 1119
  • [46] ELECTRON-PHONON INTERACTION IN A SUPERLATTICE
    SHMELEV, GM
    CHAIKOVSKII, IA
    PAVLOVICH, VV
    EPSHTEIN, EM
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1977, 80 (02): : 697 - 701
  • [47] Electron-phonon interaction in nanodevices
    Kral, Karel
    TMS 2008 ANNUAL MEETING SUPPLEMENTAL PROCEEDINGS, VOL 1: MATERIALS PROCESSING AND PROPERTIES, 2008, : 81 - 86
  • [48] ELECTRON-PHONON INTERACTION IN SEMICONDUCTORS
    KUMAR, A
    VERMA, GS
    INDIAN JOURNAL OF PURE & APPLIED PHYSICS, 1970, 8 (08) : 444 - &
  • [49] ELECTRON-PHONON INTERACTION IN GERMANIUM
    Shuey, Ralph T.
    SOLID STATE COMMUNICATIONS, 1965, 3 (02) : 43 - 45
  • [50] PHONON LINEWIDTHS AND ELECTRON-PHONON INTERACTION IN NB
    BUTLER, WH
    PINSKI, FJ
    ALLEN, PB
    PHYSICAL REVIEW B, 1979, 19 (07): : 3708 - 3721