TY - JOUR
T1 - Absence of Luther-Emery superconducting phase in the three-band model for cuprate ladders
AU - Song, Jeong Pil
AU - Mazumdar, Sumit
AU - Clay, R. Torsten
N1 - Funding Information:
Work at Arizona was supported by NSF-CHE-1764152. Some calculations in this work were supported under Project No. TG-DMR190068 of the Extreme Science and Engineering Discovery Environment (XSEDE), which is supported by National Science Foundation Grant No. ACI-1548562. Specifically, we used the Bridges and Bridges2 systems at the Pittsburgh Supercomputing Center, which are supported by NSF Awards No. ACI-1445606 and No. ACI-1928147, respectively.
Publisher Copyright:
© 2021 American Physical Society.
PY - 2021/9/1
Y1 - 2021/9/1
N2 - Correlated-electron theories of superconductivity in layered cuprates often start from the premise of a gapped spin-liquid phase proximate to the superconducting state. This assumption is justified based on analytical and numerical demonstrations of a superconducting Luther-Emery phase in the doped 2-leg one-band Hubbard ladder, and the perceived analogy between coupled ladders and the two-dimensional CuO2 layer. We demonstrate from accurate density matrix renormalization group studies the absence of the superconducting Luther-Emery phase in the doped 2-leg three-band ladder consisting of both copper and oxygen, even as the spin gap is large in the undoped three-band ladder. For realistic oxygen-oxygen hopping and Hubbard repulsion on the oxygen atoms, density-density rather than pairing correlations are dominant at long range. This result is equally valid whether or not the oxygens outside the ladder proper, over and above the rung and leg oxygens, are included in the computation. These results demonstrate the critical importance of oxygen orbitals, and raise disturbing questions about the applicability of many of the existing correlated-electron theories of superconductivity.
AB - Correlated-electron theories of superconductivity in layered cuprates often start from the premise of a gapped spin-liquid phase proximate to the superconducting state. This assumption is justified based on analytical and numerical demonstrations of a superconducting Luther-Emery phase in the doped 2-leg one-band Hubbard ladder, and the perceived analogy between coupled ladders and the two-dimensional CuO2 layer. We demonstrate from accurate density matrix renormalization group studies the absence of the superconducting Luther-Emery phase in the doped 2-leg three-band ladder consisting of both copper and oxygen, even as the spin gap is large in the undoped three-band ladder. For realistic oxygen-oxygen hopping and Hubbard repulsion on the oxygen atoms, density-density rather than pairing correlations are dominant at long range. This result is equally valid whether or not the oxygens outside the ladder proper, over and above the rung and leg oxygens, are included in the computation. These results demonstrate the critical importance of oxygen orbitals, and raise disturbing questions about the applicability of many of the existing correlated-electron theories of superconductivity.
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U2 - 10.1103/PhysRevB.104.104504
DO - 10.1103/PhysRevB.104.104504
M3 - Article
AN - SCOPUS:85114860670
SN - 0163-1829
VL - 104
JO - Physical Review B-Condensed Matter
JF - Physical Review B-Condensed Matter
IS - 10
M1 - 104504
ER -