English

Spin and charge dynamics of a quasi-one-dimensional antiferromagnetic metal

Strongly Correlated Electrons 2015-01-30 v2

Abstract

We use quantum Monte Carlo simulations to study a finite-temperature dimensional-crossover-driven evolution of spin and charge dynamics in weakly coupled Hubbard chains with a half-filled band. The low-temperature behavior of the charge gap indicates a crossover between two distinct energy scales: a high-energy one-dimensional (1D) Mott gap due to the umklapp process and a low-energy gap which stems from long-range antiferromagnetic (AF) fluctuations. Away from the 1D regime and at temperature scales above the charge gap, the emergence of a zero-frequency Drude-like feature in the interchain optical conductivity σ(ω)\sigma_{\perp}(\omega) implies the onset of a higher-dimensional metal. In this metallic phase, enhanced quasiparticle scattering off finite-range AF fluctuations results in incoherent single-particle dynamics. The coupling between spin and charge fluctuations is also seen in the spin dynamical structure factor S(q,ω)S({\pmb q},\omega) displaying damped spin excitations (paramagnons) close to the AF wave-vector q=(π,π){\pmb q}=(\pi,\pi) and particle-hole continua near 1D momentum transfers spanning quasiparticles at the Fermi surface. We relate our results to the charge deconfinement in quasi-1D organic Bechgaard-Fabre salts.

Keywords

Cite

@article{arxiv.1412.0287,
  title  = {Spin and charge dynamics of a quasi-one-dimensional antiferromagnetic metal},
  author = {Marcin Raczkowski and Fakher F. Assaad and Lode Pollet},
  journal= {arXiv preprint arXiv:1412.0287},
  year   = {2015}
}

Comments

14+ pages, 13 figures; new Fig. 5c, added Fig. 6