Kinks in the dispersion of strongly correlated electrons

被引:169
作者
Byczuk, K. [1 ]
Kollar, M.
Held, K.
Yang, Y. -F.
Nekrasov, I. A.
Pruschke, Th.
Vollhardt, D.
机构
[1] Univ Augsburg, Inst Phys, Ctr Elect & Magnetism, D-86135 Augsburg, Germany
[2] Univ Warsaw, Inst Theoret Phys, PL-00681 Warsaw, Poland
[3] Max Inst Solid State Res, D-70569 Stuttgart, Germany
[4] Univ Gottingen, Inst Theoret Phys, D-37077 Gottingen, Germany
[5] Russian Acad Sci, Inst Electrophys, Ekaterinburg 620016, Russia
基金
俄罗斯基础研究基金会;
关键词
D O I
10.1038/nphys538
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The properties of condensed matter are determined by single-particle and collective excitations and their mutual interactions. These quantum-mechanical excitations are characterized by an energy, E, and a momentum, hk, which are related through their dispersion, E-k. The coupling of excitations may lead to abrupt changes ( kinks) in the slope of the dispersion. Kinks thus carry important information about the internal degrees of freedom of a many-body system and their effective interaction. Here, we report a novel, purely electronic mechanism leading to kinks, which is not related to any coupling of excitations. Namely, kinks are predicted for any strongly correlated metal whose spectral function shows a three-peak structure with well-separated Hubbard subbands and a central peak, as observed, for example, in transition-metal oxides. These kinks can appear at energies as high as a few hundred millielectron volts, as found in recent spectroscopy experiments on high-temperature superconductors(1-4) and other transition-metal oxides(5-8). Our theory determines not only the position of the kinks but also the range of validity of Fermi-liquid theory.
引用
收藏
页码:168 / 171
页数:4
相关论文
共 28 条
[1]  
Abrikosov A., 1975, METHODS QUANTUM FIEL
[2]   Kink in the dispersion of layered strontium ruthenates [J].
Aiura, Y ;
Yoshida, Y ;
Hase, I ;
Ikeda, SI ;
Higashiguchi, M ;
Cui, XY ;
Shimada, K ;
Namatame, H ;
Taniguchi, M ;
Bando, H .
PHYSICAL REVIEW LETTERS, 2004, 93 (11) :117005-1
[3]   Quasiparticle dynamics in graphene [J].
Bostwick, Aaron ;
Ohta, Taisuke ;
Seyller, Thomas ;
Horn, Karsten ;
Rotenberg, Eli .
NATURE PHYSICS, 2007, 3 (01) :36-40
[4]   Metal-insulator transition in the Hubbard model [J].
Bulla, R ;
Pruschke, T ;
Hewson, AC .
PHYSICA B-CONDENSED MATTER, 1999, 259-61 :721-722
[5]   Dynamical mean-field theory of strongly correlated fermion systems and the limit of infinite dimensions [J].
Georges, A ;
Kotliar, G ;
Krauth, W ;
Rozenberg, MJ .
REVIEWS OF MODERN PHYSICS, 1996, 68 (01) :13-125
[6]  
GRAF J, 2006, IN PRESS PHYS REV LE
[7]   Resonant spin excitation in an overdoped high temperature superconductor [J].
He, H ;
Sidis, Y ;
Bourges, P ;
Gu, GD ;
Ivanov, A ;
Koshizuka, N ;
Liang, B ;
Lin, CT ;
Regnault, LP ;
Schoenherr, E ;
Keimer, B .
PHYSICAL REVIEW LETTERS, 2001, 86 (08) :1610-1613
[8]   Photoemission study of a strongly coupled electron-phonon system [J].
Hengsberger, M ;
Purdie, D ;
Segovia, P ;
Garnier, M ;
Baer, Y .
PHYSICAL REVIEW LETTERS, 1999, 83 (03) :592-595
[9]   High-resolution angle-resolved photoemission study of Ni(110) [J].
Higashiguchi, M ;
Shimada, K ;
Nishiura, K ;
Cui, XY ;
Namatame, H ;
Taniguchi, M .
JOURNAL OF ELECTRON SPECTROSCOPY AND RELATED PHENOMENA, 2005, 144 :639-642
[10]   High-transition-temperature superconductivity in the absence of the magnetic-resonance mode [J].
Hwang, J ;
Timusk, T ;
Gu, GD .
NATURE, 2004, 427 (6976) :714-717