$\mathcal{PT}$ symmetry of a square-wave modulated two-level system
Abstract
We study a non-Hermitian two-level system with square-wave modulated dissipation and coupling. Based on the Floquet theory, we achieve an effective Hamiltonian from which the boundaries of the phase diagram are captured exactly. Two kinds of symmetry broken phases are found whose effective Hamiltonians differ by a constant . For the time-periodic dissipation, a vanishingly small dissipation strength can lead to the symmetry breaking in the -photon resonance (), with It is worth noting that such a phenomenon can also happen in -photon resonance (), as long as the dissipation strengths or the driving times are imbalanced, namely or . For the time-periodic coupling, the weak dissipation induced symmetry breaking occurs at , where . In the high frequency limit, the phase boundary is given by a simple relation .
Cite
@article{arxiv.2008.07068,
title = {$\mathcal{PT}$ symmetry of a square-wave modulated two-level system},
author = {Liwei Duan and Yan-Zhi Wang and Qing-Hu Chen},
journal= {arXiv preprint arXiv:2008.07068},
year = {2020}
}
Comments
9 pages, 5 figures