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Atomic scale real-space mapping of holes in...
Journal article

Atomic scale real-space mapping of holes in YBa2Cu3O6+δ

Abstract

The high-temperature superconductor YBa2Cu3O6+δ consists of two main structural units—a bilayer of CuO2 planes that are central to superconductivity and a CuO2+δ chain layer. Although the functional role of the planes and chains has long been established, most probes integrate over both, which makes it difficult to distinguish the contribution of each. Here we use electron energy loss spectroscopy to directly resolve the plane and chain contributions to the electronic structure in YBa2Cu3O6 and YBa2Cu3O7. We directly probe the charge transfer of holes from the chains to the planes as a function of oxygen content, and show that the change in orbital occupation of Cu is large in the chain layer but modest in CuO2 planes, with holes in the planes doped primarily into the O 2p states. These results provide direct insight into the local electronic structure and charge transfers in this important high-temperature superconductor.

Authors

Gauquelin N; Hawthorn DG; Sawatzky GA; Liang RX; Bonn DA; Hardy WN; Botton GA

Journal

Nature Communications, Vol. 5, No. 1,

Publisher

Springer Nature

Publication Date

July 15, 2014

DOI

10.1038/ncomms5275

ISSN

2041-1723

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