English

Two-color electromagnetically induced transparency via modulated coupling between a mechanical resonator and a qubit

Quantum Physics 2018-08-15 v2

Abstract

We discuss level splitting and sideband transitions induced by a modulated coupling between a superconducting quantum circuit and a nanomechanical resonator. First, we show how to achieve an unconventional time-dependent longitudinal coupling between a flux (transmon) qubit and the resonator. Considering a sinusoidal modulation of the coupling strength, we find that a first-order sideband transition can be split into two. Moreover, under the driving of a red-detuned field, we discuss the optical response of the qubit for a resonant probe field. We show that level splitting induced by modulating this longitudinal coupling can enable two-color electromagnetically induced transparency (EIT), in addition to single-color EIT. In contrast to standard predictions of two-color EIT in atomic systems, we apply here only a single drive (control) field. The monochromatic modulation of the coupling strength is equivalent to employing two eigenfrequency-tunable mechanical resonators. Both drive-probe detuning for single-color EIT and the distance between transparent windows for two-color EIT, can be adjusted by tuning the modulation frequency of the coupling.

Keywords

Cite

@article{arxiv.1803.06513,
  title  = {Two-color electromagnetically induced transparency via modulated coupling between a mechanical resonator and a qubit},
  author = {Xin Wang and Adam Miranowicz and Hong-Rong Li and Fu-Li Li and Franco Nori},
  journal= {arXiv preprint arXiv:1803.06513},
  year   = {2018}
}

Comments

13 pages; 8 figures

R2 v1 2026-06-23T00:56:18.133Z