A Quantum Monte Carlo Study of the Effect of Strain on Charge Density Wave Order in the Holstein Model

ORAL

Abstract

We investigate charge ordering in the Holstein model in the presence of anisotropic hopping, tx,ty=(1-δ),(1+δ), as a model of the effect of strain on charge density wave (CDW) materials. Using Quantum Monte Carlo simulations, we show that the CDW transition temperature is relatively insensitive to moderate anisotropy δ≤0.3, but begins to decrease more rapidly at δ≥0.4. However, the density correlations change significantly for moderate δ. Accompanying mean-field theory calculations show a similar qualitative structure, with the transition temperature relatively constant at small δ and a more rapid decrease for larger strains. We also obtain the density of states N(ω), which provides clear signal of the charge ordering transition at large strain, where finite size scaling of the charge structure factor is extremely difficult because of the small value of the order parameter.

*The work of B.C-S. and R.T.S. was supported by the Department of Energy under grant de-sc0014671. N.C.C. was supported by the Brazilian funding agencies CAPES and CNPq. E.K. and from the NSF Grant No. MR-1609560. Computations were performed in part on Spartan high-performance computing facility at San Jos'e State University, which is supported by the NSF under Grant No. OAC-1626645.

Presenters

  • Benjamin Cohen-Stead

    • University of California, Davis
    • Physics, UC Davis

Authors

  • Benjamin Cohen-Stead

    • University of California, Davis
    • Physics, UC Davis
  • Richard Theodore Scalettar

    • University of California, Davis
    • Physics, UC Davis
    • UC Davis
  • Natanael C. Costa

    • International School for Advanced Studies
    • International School for Advanced Studies (SISSA)
  • Ehsan Khatami

    • San Jose State University