| Literature DB >> 27791157 |
Andrej Mesaros1, Kazuhiro Fujita2, Stephen D Edkins1,3, Mohammad H Hamidian4,5, Hiroshi Eisaki6, Shin-Ichi Uchida6,7, J C Séamus Davis8,2,3,9, Michael J Lawler1,10, Eun-Ah Kim8.
Abstract
Theories based upon strong real space (r-space) electron-electron interactions have long predicted that unidirectional charge density modulations (CDMs) with four-unit-cell (4a0) periodicity should occur in the hole-doped cuprate Mott insulator (MI). Experimentally, however, increasing the hole density p is reported to cause the conventionally defined wavevector QA of the CDM to evolve continuously as if driven primarily by momentum-space (k-space) effects. Here we introduce phase-resolved electronic structure visualization for determination of the cuprate CDM wavevector. Remarkably, this technique reveals a virtually doping-independent locking of the local CDM wavevector at [Formula: see text] throughout the underdoped phase diagram of the canonical cuprate Bi2Sr2CaCu2O8 These observations have significant fundamental consequences because they are orthogonal to a k-space (Fermi-surface)-based picture of the cuprate CDMs but are consistent with strong-coupling r-space-based theories. Our findings imply that it is the latter that provides the intrinsic organizational principle for the cuprate CDM state.Entities:
Keywords: CuO2 pseudogap; commensurate charge density modulation; phase discommensuration
Year: 2016 PMID: 27791157 PMCID: PMC5111700 DOI: 10.1073/pnas.1614247113
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205