Generating Entangled Microwave Radiation Over Two Transmission Lines
arXiv:1204.0732 · doi:10.1103/PhysRevLett.109.183901
Abstract
Using a superconducting circuit, the Josephson mixer, we demonstrate the first experimental realization of spatially separated two-mode squeezed states of microwave light. Driven by a pump tone, a first Josephson mixer generates, out of quantum vacuum, a pair of entangled fields at different frequencies on separate transmission lines. A second mixer, driven by a -phase shifted copy of the first pump tone, recombines and disentangles the two fields. The resulting output noise level is measured to be lower than for vacuum state at the input of the second mixer, an unambiguous proof of entanglement. Moreover, the output noise level provides a direct, quantitative measure of entanglement, leading here to the demonstration of 6 Mebit.s (Mega entangled bits per second) generated by the first mixer.
5 pages, 4 figures. Supplementary Information can be found here as an ancillary file
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- Observation of Entanglement Between Itinerant Microwave Photons and a Superconducting Qubit
- Two-mode squeezing in an electromechanical resonator
- Dispersive Qubit Measurement by Interferometry with Parametric Amplifiers
- Josephson photonics with a two-mode superconducting circuit
- Experimental Violation Of Bell-like Inequalities By Electronic Shot Noise
- Emission of Microwave Photon Pairs by a Tunnel Junction
- Generating and verifying entangled itinerant microwave fields with efficient and independent measurements
- A compact design for the Josephson mixer: the lumped element circuit