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Traces of electron-phonon coupling in one-dimensional cuprates

ORAL

Abstract

The appearance of certain spectral features in one-dimensional (1D) cuprate materials has been attributed to a strong, extended attractive coupling between electrons. Here, using time-dependent density matrix renormalization group methods on a Hubbard-extended Holstein model, we show that extended electron-phonon (e-ph) coupling presents an obvious choice to produce such an attractive interaction that reproduces the observed spectral features and doping dependence seen in angle-resolved photoemission experiments: diminished 3kF spectral weight, prominent spectral intensity of a holon-folding branch, and the correct holon bandwidth. While extended e-ph coupling does not qualitatively alter the ground state of the 1D system compared to the Hubbard model, it quantitatively enhances the long-range superconducting correlations and suppresses spin correlations. Such an extended e-ph interaction may be an important missing ingredient in describing the physics of the structurally similar two-dimensional high-temperature superconducting layered cuprates, which may tip the balance between intertwined orders in favor of uniform d-wave superconductivity.

Publication: Ta Tang, Brian Moritz, Cheng Peng, Z. X. Shen, and Thomas P. Devereaux, arXiv:2210.09288 [cond-mat.str-el]

Presenters

  • Brian Moritz

    SLAC National Accelerator Laboratory, SLAC - Natl Accelerator Lab

Authors

  • Brian Moritz

    SLAC National Accelerator Laboratory, SLAC - Natl Accelerator Lab

  • Ta Tang

    Stanford University

  • Cheng Peng

    SLAC, SLAC National Accelerator Laboratory

  • Zhixun Shen

    Stanford University, Stanford Insitute for Materials and Energy Sciences, Stanford

  • Thomas Devereaux

    Stanford Univ, Stanford University