| Literature DB >> 24989503 |
Kazuhiro Fujita1, Mohammad H Hamidian2, Stephen D Edkins3, Chung Koo Kim4, Yuhki Kohsaka5, Masaki Azuma6, Mikio Takano7, Hidenori Takagi8, Hiroshi Eisaki9, Shin-Ichi Uchida10, Andrea Allais11, Michael J Lawler12, Eun-Ah Kim13, Subir Sachdev14, J C Séamus Davis15.
Abstract
The identity of the fundamental broken symmetry (if any) in the underdoped cuprates is unresolved. However, evidence has been accumulating that this state may be an unconventional density wave. Here we carry out site-specific measurements within each CuO2 unit cell, segregating the results into three separate electronic structure images containing only the Cu sites [Cu(r)] and only the x/y axis O sites [Ox(r) and O(y)(r)]. Phase-resolved Fourier analysis reveals directly that the modulations in the O(x)(r) and O(y)(r) sublattice images consistently exhibit a relative phase of π. We confirm this discovery on two highly distinct cuprate compounds, ruling out tunnel matrix-element and materials-specific systematics. These observations demonstrate by direct sublattice phase-resolved visualization that the density wave found in underdoped cuprates consists of modulations of the intraunit-cell states that exhibit a predominantly d-symmetry form factor.Entities:
Keywords: CuO2 pseudogap; broken symmetry; density-wave form factor
Year: 2014 PMID: 24989503 PMCID: PMC4121838 DOI: 10.1073/pnas.1406297111
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205