1. Vacuum-induced Autler-Townes splitting in a superconducting artificial atom
- Author
-
Jaw-Shen Tsai, Lan Zhou, L. L. Ying, Yu-xi Liu, Y. Zhou, Oleg V. Astafiev, Zhaohui Wang, Z. H. Peng, J. H. Ding, and Le-Man Kuang
- Subjects
Physics ,Quantum Physics ,Photon ,Field (physics) ,Condensed Matter - Superconductivity ,Coplanar waveguide ,FOS: Physical sciences ,01 natural sciences ,010305 fluids & plasmas ,Superconductivity (cond-mat.supr-con) ,Resonator ,Reflection (mathematics) ,Excited state ,0103 physical sciences ,Atom ,Physics::Atomic Physics ,Atomic physics ,010306 general physics ,Ground state ,Quantum Physics (quant-ph) - Abstract
We experimentally study a vacuum-induced Autler-Townes doublet in a superconducting three-level artificial atom strongly coupled to a coplanar waveguide resonator and simultaneously to a transmission line. The Autler-Townes splitting is observed in the reflection spectrum from the three-level atom in a transition between the ground state and the second excited state when the transition between the two excited states is resonant with a resonator. By applying a driving field to the resonator, we observe a change in the regime of the Autler-Townes splitting from quantum (vacuum-induced) to classical (with many resonator photons). Furthermore, we show that the reflection of propagating microwaves in a transmission line could be controlled by different frequency single photons in a resonator., Comment: 5 pages, 3 figures+supplementary materials
- Published
- 2017
- Full Text
- View/download PDF