On the Electron Pairing Mechanism of Copper-Oxide High Temperature Superconductivity
Abstract
The elementary CuO2 plane sustaining cuprate high-temperature superconductivity occurs typically at the base of a periodic array of edge-sharing CuO5 pyramids. Virtual transitions of electrons between adjacent planar Cu and O atoms, occurring at a rate and across the charge-transfer energy gap E, generate 'superexchange' spin-spin interactions of energy in an antiferromagnetic correlated-insulator state. However, Hole doping the CuO2 plane converts this into a very high temperature superconducting state whose electron-pairing is exceptional. A leading proposal for the mechanism of this intense electron-pairing is that, while hole doping destroys magnetic order it preserves pair-forming superexchange interactions governed by the charge-transfer energy scale E. To explore this hypothesis directly at atomic-scale, we combine single-electron and electron-pair (Josephson) scanning tunneling microscopy to visualize the interplay of E and the electron-pair density nP in . The responses of both E and nP to alterations in the distance {\delta} between planar Cu and apical O atoms are then determined. These data reveal the empirical crux of strongly correlated superconductivity in CuO2, the response of the electron-pair condensate to varying the charge transfer energy. Concurrence of predictions from strong-correlation theory for hole-doped charge-transfer insulators with these observations, indicates that charge-transfer superexchange is the electron-pairing mechanism of superconductive .
Keywords
Cite
@article{arxiv.2108.03655,
title = {On the Electron Pairing Mechanism of Copper-Oxide High Temperature Superconductivity},
author = {S. M. O'Mahony and Wangping Ren and Weijiong Chen and Yi Xue Chong and Xiaolong Liu and H. Eisaki and S. Uchida and M. H. Hamidian and J. C. Seamus Davis},
journal= {arXiv preprint arXiv:2108.03655},
year = {2022}
}
Comments
23 pages, 5 figures