Interplay between charge order and superconductivity in cuprate superconductors

被引:12
作者
Gao, Deheng [1 ]
Liu, Yiqun [1 ]
Zhao, Huaisong [2 ]
Mou, Yingping [1 ]
Feng, Shiping [1 ]
机构
[1] Beijing Normal Univ, Dept Phys, Beijing 100875, Peoples R China
[2] Qingdao Univ, Coll Phys, Qingdao 266071, Peoples R China
来源
PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS | 2018年 / 551卷
基金
中国国家自然科学基金;
关键词
Charge order; Fermi arc; Pseudogap; Superconductivity; Cuprate superconductor; FERMI-ARC INSTABILITY; DENSITY-WAVE ORDER; QUANTUM OSCILLATIONS; ELECTRONIC-STRUCTURE; SURFACE; PSEUDOGAP; STATE; PARTICLE; SCATTERING; SYMMETRY;
D O I
10.1016/j.physc.2018.04.006
中图分类号
O59 [应用物理学];
学科分类号
摘要
One of the central issues in the recent study of cuprate superconductors is the interplay of charge order with superconductivity. Here the interplay of charge order with superconductivity in cuprate superconductors is studied based on the kinetic-energy-driven superconducting (SC) mechanism by taking into account the intertwining between the pseudogap and SC gap. It is shown that the appearance of the Fermi pockets is closely associated with the emergence of the pseudogap. However, the distribution of the spectral weight of the SC-state quasiparticle spectrum on the Fermi arc, or equivalently the front side of the Fermi pocket, and back side of Fermi pocket is extremely anisotropic, where the most part of the spectral weight is located around the tips of the Fermi arcs, which in this case coincide with the hot spots on the electron Fermi surface (EFS). In particular, as charge order in the normal-state, this EFS instability drives charge order in the SC-state, with the charge-order wave vector that is well consistent with the wave vector connecting the hot spots on the straight Fermi arcs. Furthermore, this charge-order state is doping dependent, with the charge-order wave vector that decreases in magnitude with the increase of doping. Although there is a coexistence of charge order and superconductivity, this charge order antagonizes superconductivity. The results from the SC-state dynamical charge structure factor indicate the existence of a quantitative connection between the low-energy electronic structure and collective response of the electron density. The theory also shows that the pseudogap and charge order have a root in common, they and superconductivity are a natural consequence of the strong electron correlation.
引用
收藏
页码:72 / 81
页数:10
相关论文
共 79 条
[1]   THE RESONATING VALENCE BOND STATE IN LA2CUO4 AND SUPERCONDUCTIVITY [J].
ANDERSON, PW .
SCIENCE, 1987, 235 (4793) :1196-1198
[2]   Sources of quantum protection in high-Tc superconductivity [J].
Anderson, PW .
SCIENCE, 2000, 288 (5465) :480-482
[3]   Charge order in the pseudogap phase of cuprate superconductors [J].
Atkinson, W. A. ;
Kampf, A. P. ;
Bulut, S. .
NEW JOURNAL OF PHYSICS, 2015, 17
[4]   THEORY OF SUPERCONDUCTIVITY [J].
BARDEEN, J ;
COOPER, LN ;
SCHRIEFFER, JR .
PHYSICAL REVIEW, 1957, 108 (05) :1175-1204
[5]  
Barisic N, 2013, NAT PHYS, V9, P761, DOI [10.1038/nphys2792, 10.1038/NPHYS2792]
[6]   POSSIBLE HIGH-TC SUPERCONDUCTIVITY IN THE BA-LA-CU-O SYSTEM [J].
BEDNORZ, JG ;
MULLER, KA .
ZEITSCHRIFT FUR PHYSIK B-CONDENSED MATTER, 1986, 64 (02) :189-193
[7]   Inhomogeneity of charge-density-wave order and quenched disorder in a high-Tc superconductor [J].
Campi, G. ;
Bianconi, A. ;
Poccia, N. ;
Bianconi, G. ;
Barba, L. ;
Arrighetti, G. ;
Innocenti, D. ;
Karpinski, J. ;
Zhigadlo, N. D. ;
Kazakov, S. M. ;
Burghammer, M. ;
Zimmermann, M. V. ;
Sprung, M. ;
Ricci, A. .
NATURE, 2015, 525 (7569) :359-+
[8]  
Campuzano JC, 2004, PHYSICS OF SUPERCONDUCTORS, VOL II, P167
[9]   FERMI SURFACES OF YBA2CU3O6.9 AS SEEN BY ANGLE-RESOLVED PHOTOEMISSION [J].
CAMPUZANO, JC ;
JENNINGS, G ;
FAIZ, M ;
BEAULAIGUE, L ;
VEAL, BW ;
LIU, JZ ;
PAULIKAS, AP ;
VANDERVOORT, K ;
CLAUS, H ;
LIST, RS ;
ARKO, AJ ;
BARTLETT, RJ .
PHYSICAL REVIEW LETTERS, 1990, 64 (19) :2308-2311
[10]   Bosons in high-temperature superconductors: an experimental survey [J].
Carbotte, Jules P. ;
Timusk, Thomas ;
Hwang, Jungseek .
REPORTS ON PROGRESS IN PHYSICS, 2011, 74 (06)