| Literature DB >> 29507297 |
S A Moiseev1, K I Gerasimov2, R R Latypov3, N S Perminov2, K V Petrovnin2,3, O N Sherstyukov3.
Abstract
In this paper we experimentally demonstrated a broadband scheme of the multiresonator quantum memory-interface. The microwave photonic scheme consists of the system of mini-resonators strongly interacting with a common broadband resonator coupled with the external waveguide. We have implemented the impedance matched quantum storage in this scheme via controllable tuning of the mini-resonator frequencies and coupling of the common resonator with the external waveguide. Proof-of-principal experiment has been demonstrated for broadband microwave pulses when the quantum efficiency of 16.3% was achieved at room temperature. By using the obtained experimental spectroscopic data, the dynamics of the signal retrieval has been simulated and promising results were found for high-Q mini-resonators in microwave and optical frequency ranges. The results pave the way for the experimental implementation of broadband quantum memory-interface with quite high efficiency η > 0.99 on the basis of modern technologies, including optical quantum memory at room temperature.Entities:
Year: 2018 PMID: 29507297 PMCID: PMC5838197 DOI: 10.1038/s41598-018-21941-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Experimental installation of the MR QMI scheme (blue color of filling): the large common resonator is connected with 5 cylindrical brass mini-resonators, the frequencies of which can be tuned by using the handles fixing the lengths of the cylinders. (b) Reflected (t = 0) and echo signals from MR circuit at the varied spectral detuning Δ between mini-resonators. Dashed envelope and black square dots in the insert of figure (b) show the dependence of the efficiency on the storage time. Size of the points in the inset corresponds to experimental error. Signals were normalized to the amplitude of input signals, which are not shown.
Figure 2Experimental curves of the normalized echo intensity for Δ = 12 MHz: black dot-dashed line–input pulse, red dashed line–echo for open configuration (when the input slit is fully open), green solid line–echo for optimal κ (impedance matching condition). Theoretical curves of the normalized echo intensity for Δ = 12 MHz are shown in the insert. Type and color of the lines for echo at the optimal κ are the same as in the experimental curves in Fig. 1b.
Figure 3(a) Simulation of the microwave field in the QMI system using the “CST Studio Suite 2015” program. The color arrows show the amplitude of the electric field strength in the resonators. (b) Fabricated setup used in our experiments.
Figure 4Spectrum |S(ν)| of the microwave QMI for Δ = 12 MHz: red solid line–theory, blue dashed line–experiment.