Superconducting Fluctuations in the Normal State of the Two-Dimensional Hubbard Model

Xi Chen, J. P. F. LeBlanc, and Emanuel Gull
Phys. Rev. Lett. 115, 116402 – Published 9 September 2015
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Abstract

We compute the two-particle quantities relevant for superconducting correlations in the two-dimensional Hubbard model within the dynamical cluster approximation. In the normal state we identify the parameter regime in density, interaction, and second-nearest-neighbor hopping strength that maximizes the dx2y2 superconducting transition temperature. We find in all cases that the optimal transition temperature occurs at intermediate coupling strength, and is suppressed at strong and weak interaction strengths. Similarly, superconducting fluctuations are strongest at intermediate doping and suppressed towards large doping and half filling. We find a change in sign of the vertex contributions to dxy superconductivity from repulsive near half filling to attractive at large doping. p-wave superconductivity is not found at the parameters we study, and s-wave contributions are always repulsive. For negative second-nearest-neighbor hopping the optimal transition temperature shifts towards the electron-doped side in opposition to the van Hove singularity, which moves towards hole doping. We surmise that an increase of the local interaction of the electron-doped compounds would increase Tc.

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  • Received 14 July 2015

DOI:https://doi.org/10.1103/PhysRevLett.115.116402

© 2015 American Physical Society

Authors & Affiliations

Xi Chen, J. P. F. LeBlanc, and Emanuel Gull

  • Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, USA

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Issue

Vol. 115, Iss. 11 — 11 September 2015

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