Disorder and pseudogap in strongly correlated systems: Phase diagram in the DMFT plus I£ approach

被引:1
|
作者
Kuleeva, N. A. [1 ]
Kuchinskii, E. Z. [1 ]
机构
[1] Russian Acad Sci, Ural Branch, Inst Electrophys, Ekaterinburg 620016, Russia
基金
俄罗斯基础研究基金会;
关键词
MEAN-FIELD THEORY; SELF-CONSISTENT THEORY; ANDERSON LOCALIZATION; TRANSITION; SUPERCONDUCTORS; DIMENSIONS; MODEL;
D O I
10.1134/S1063776113060198
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The influence of disorder and pseudogap fluctuations on the Mott insulator-metal transition in strongly correlated systems has been studied in the framework of the generalized dynamic mean field theory (DMFT + I pound approach). Using the results of investigations of the density of states (DOS) and optical conductivity, a phase diagram (disorder-Hubbard interaction-temperature) is constructed for the paramagnetic Anderson-Hubbard model, which allows both the effects of strong electron correlations and the influence of strong disorder to be considered. Strong correlations are described using the DMFT, while a strong disorder is described using a generalized self-consistent theory of localization. The DOS and optical conductivity of the paramagnetic Hubbard model have been studied in a pseudogap state caused by antiferromagnetic spin (or charge) short-range order fluctuations with a finite correlation length, which have been modeled by a static Gaussian random field. The effect of a pseudogap on the Mott insulator-metal transition has been studied. It is established that, in both cases, the static Gaussian random field (related to the disorder or pseudogap fluctuations) leads to suppression of the Mott transition, broadening of the coexistence region of the insulator and metal phases, and an increase in the critical temperature at which the coexistence region disappears.
引用
收藏
页码:1027 / 1035
页数:9
相关论文
共 50 条
  • [41] Freezing of strongly correlated electrons in bilayer systems with weak disorder
    Thakur, JS
    Neilson, D
    PHYSICAL REVIEW B, 1997, 56 (16): : 10297 - 10302
  • [42] Freezing of strongly correlated electrons in bilayer systems with weak disorder
    Thakur, JS
    Neilson, D
    PROGRESS OF THEORETICAL PHYSICS SUPPLEMENT, 1997, (126): : 339 - 342
  • [43] Photoinduced Phase Transitions in Strongly Correlated Electron Systems
    Koshihara, Shin-ya
    Adachi, Shinichi
    Okimoto, Yoichi
    Ishikawa, Tadahiko
    Fukaya, Ryo
    Fukumoto, Keiki
    Hoshino, Manabu
    Onda, Ken
    2012 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2012,
  • [44] TOPOLOGICAL PHASE TRANSITIONS IN STRONGLY CORRELATED FERMI SYSTEMS
    Clark, J. W.
    Khodel, V. A.
    Zverev, M. V.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2009, 23 (20-21): : 4059 - 4073
  • [45] TOPOLOGICAL PHASE TRANSITIONS IN STRONGLY CORRELATED FERMI SYSTEMS
    Clark, J. W.
    Khodel, V. A.
    Zverev, M. V.
    CONDENSED MATTER THEORIES, VOL 24, 2010, : 125 - +
  • [46] Variational and Parquet-diagram theory for strongly correlated normal and superfluid systems
    Fan, Hsuan Hao
    Krotscheck, Eckhard
    PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2019, 823 : 1 - 59
  • [47] A NEW APPROACH TO THE CALCULATION OF SPECTRA FOR STRONGLY CORRELATED SYSTEMS
    COSTI, TA
    HEWSON, AC
    PHYSICA B, 1990, 163 (1-3): : 179 - 181
  • [48] Lattice theoretical approach in strongly correlated electron systems
    Lee, Mu-Kun
    Chern, Chyh-Hong
    RESULTS IN PHYSICS, 2019, 13
  • [49] Total energy calculations using DFT plus DMFT: Computing the pressure phase diagram of the rare earth nickelates
    Park, Hyowon
    Millis, Andrew J.
    Marianetti, Chris A.
    PHYSICAL REVIEW B, 2014, 89 (24)
  • [50] Comment on "Direct Mapping of the Finite Temperature Phase Diagram of Strongly Correlated Quantum Models"
    Pollet, Lode
    Prokof'ev, Nikolay
    Svistunov, Boris
    PHYSICAL REVIEW LETTERS, 2010, 105 (19)