English

Dynamical properties of a driven dissipative dimerized $S = 1/2$ chain

Strongly Correlated Electrons 2021-02-02 v2

Abstract

We consider the dynamical properties of a gapped quantum spin system coupled to the electric field of a laser, which drives the resonant excitation of specific phonon modes that modulate the magnetic interactions. We deduce the quantum master equations governing the time-evolution of both the lattice and spin sectors, by developing a Lindblad formalism with bath operators providing an explicit description of their respective phonon-mediated damping terms. We investigate the nonequilibrium steady states (NESS) of the spin system established by a continuous driving, delineating parameter regimes in driving frequency, damping, and spin-phonon coupling for the establishment of physically meaningful NESS and their related non-trivial properties. Focusing on the regime of generic weak spin-phonon coupling, we characterize the NESS by their frequency and wave-vector content, explore their transient and relaxation behavior, and discuss the energy flow, the system temperature, and the critical role of the type of bath adopted. Our study lays a foundation for the quantitative modelling of experiments currently being designed to control coherent many-body spin states in quantum magnetic materials.

Keywords

Cite

@article{arxiv.2009.14805,
  title  = {Dynamical properties of a driven dissipative dimerized $S = 1/2$ chain},
  author = {M. Yarmohammadi and C. Meyer and B. Fauseweh and B. Normand and G. S. Uhrig},
  journal= {arXiv preprint arXiv:2009.14805},
  year   = {2021}
}

Comments

36 pages, 16 figures

R2 v1 2026-06-23T18:54:57.705Z