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Stripe order from the perspective of the Hubbard model

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arxiv 1709.02398 v2 pith:P2XHDN6D submitted 2017-09-07 cond-mat.str-el

classification cond-mat.str-el
keywords modelcupratestripeshubbardacrossdiagramfamiliesphase
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A microscopic understanding of the strongly correlated physics of the cuprates must account for the translational and rotational symmetry breaking that is present across all cuprate families, commonly in the form of stripes. Here we investigate emergence of stripes in the Hubbard model, a minimal model believed to be relevant to the cuprate superconductors, using determinant quantum Monte Carlo (DQMC) simulations at finite temperatures and density matrix renormalization group (DMRG) ground state calculations. By varying temperature, doping, and model parameters, we characterize the extent of stripes throughout the phase diagram of the Hubbard model. Our results show that including the often neglected next-nearest-neighbor hopping leads to the absence of spin incommensurability upon electron-doping and nearly half-filled stripes upon hole-doping. The similarities of these findings to experimental results on both electron and hole-doped cuprate families support a unified description across a large portion of the cuprate phase diagram.

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  1. Dynamical Charge Susceptibility in the Hubbard Model

    cond-mat.str-el 2019-08 conditional novelty 6.0 of 10

    The dynamical charge susceptibility of the 2D Hubbard model in the pseudogap regime shows weak momentum and temperature dependence and no clear pseudogap signature, based on eight-site dynamical cluster approximation ...

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