English

Floquet engineering topological many-body localized systems

Disordered Systems and Neural Networks 2020-05-20 v3 Statistical Mechanics Quantum Physics

Abstract

We show how second-order Floquet engineering can be employed to realize systems in which many-body localization coexists with topological properties in a driven system. This allows one to implement and dynamically control a topologically-protected qubit even at high energies. Floquet engineering - the idea that a periodically driven non-equilibrium system can effectively emulate the physics of a different Hamiltonian - is used to simulate an ffective three-body interaction among spins in one dimension, using time-dependent two-body interactions only. In the effective system emulated topology and disorder coexist which provides an intriguing inroad into the interplay of many-body localization, defying our standard understanding of thermodynamics, and topological phases of matter, which are of fundamental and technological importance. We demonstrate explicitly how combining Floquet engineering, topology and many-body localization allows one to harvest the advantages (time-dependent control, topological protection and reduction of heating, respectively) of each of these sub-fields while protecting from their disadvantages (heating, static control parameters and strong disorder).

Keywords

Cite

@article{arxiv.1911.01269,
  title  = {Floquet engineering topological many-body localized systems},
  author = {Kevin S. C. Decker and Christoph Karrasch and Jens Eisert and Dante M. Kennes},
  journal= {arXiv preprint arXiv:1911.01269},
  year   = {2020}
}

Comments

6 pages, 5 figures, cosmetic changes, replaced by published version

R2 v1 2026-06-23T12:04:09.544Z