Back to Search Start Over

Surface-enhanced charge-density-wave instability in underdoped Bi2Sr(2-x)La(x)CuO(6+δ).

Authors :
Rosen JA
Comin R
Levy G
Fournier D
Zhu ZH
Ludbrook B
Veenstra CN
Nicolaou A
Wong D
Dosanjh P
Yoshida Y
Eisaki H
Blake GR
White F
Palstra TT
Sutarto R
He F
Fraño Pereira A
Lu Y
Keimer B
Sawatzky G
Petaccia L
Damascelli A
Source :
Nature communications [Nat Commun] 2013; Vol. 4, pp. 1977.
Publication Year :
2013

Abstract

Neutron and X-ray scattering experiments have provided mounting evidence for spin and charge ordering phenomena in underdoped cuprates. These range from early work on stripe correlations in Nd-LSCO to the latest discovery of charge-density-waves in YBa2Cu3O(6+x). Both phenomena are characterized by a pronounced dependence on doping, temperature and an externally applied magnetic field. Here, we show that these electron-lattice instabilities exhibit also a previously unrecognized bulk-surface dichotomy. Surface-sensitive electronic and structural probes uncover a temperature-dependent evolution of the CuO2 plane band dispersion and apparent Fermi pockets in underdoped Bi2 Sr(2-x) La(x) CuO(6+δ) (Bi2201), which is directly associated with an hitherto-undetected strong temperature dependence of the incommensurate superstructure periodicity below 130 K. In stark contrast, the structural modulation revealed by bulk-sensitive probes is temperature-independent. These findings point to a surface-enhanced incipient charge-density-wave instability, driven by Fermi surface nesting. This discovery is of critical importance in the interpretation of single-particle spectroscopy data, and establishes the surface of cuprates and other complex oxides as a rich playground for the study of electronically soft phases.

Details

Language :
English
ISSN :
2041-1723
Volume :
4
Database :
MEDLINE
Journal :
Nature communications
Publication Type :
Academic Journal
Accession number :
23817313
Full Text :
https://doi.org/10.1038/ncomms2977