4 research outputs found

    Efficient and robust analysis of complex scattering data under noise in microwave resonators

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    Superconducting microwave resonators are reliable circuits widely used for detection and as test devices for material research. A reliable determination of their external and internal quality factors is crucial for many modern applications, which either require fast measurements or operate in the single photon regime with small signal to noise ratios. Here, we use the circle fit technique with diameter correction and provide a step by step guide for implementing an algorithm for robust fitting and calibration of complex resonator scattering data in the presence of noise. The speedup and robustness of the analysis are achieved by employing an algebraic rather than an iterative fit technique for the resonance circle

    Stokes-operator-squeezed continuous-variable polarization states

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    We investigate nonclassical Stokes-operator variances in continuous-wave polarization-squeezed laser light generated from one and two optical parametric amplifiers. A general expression of how Stokes-operator variances decompose into two-mode quadrature operator variances is given. Stokes parameter variance spectra for four different polarization-squeezed states have been measured and compared with a coherent state. Our measurement results are visualized by three-dimensional Stokes-operator noise volumes mapped on the quantum Poincare sphere. We quantitatively compare the channel capacity of the different continuous-variable polarization states for communication protocols. It is shown that squeezed polarization states provide 33% higher channel capacities than the optimum coherent beam protocol

    OVNA-measured coherence in erbium doped Y<inf>2</inf>SiO<inf>5</inf> and LiYF<inf>4</inf> crystals at sub-Kelvin temperatures

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    © 2020 Author(s). The optical vector network analysis technique is a handful technique in analysis of optical networks. We here discuss application of the optical vector network analysis for the coherence studies in atomic ensembles

    Electromagnetically induced transparency in a mono-isotopic <sup>167</sup>Er:<sup>7</sup>LiYF<inf>4</inf>crystal below 1 Kelvin: Microwave photonics approach

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    © 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement. Electromagnetically induced transparency allows for the controllable change of absorption properties, which can be exploited in a number of applications including optical quantum memory. In this paper, we present a study of the electromagnetically induced transparency in a 167Er:7LiYF4 crystal at low magnetic fields and ultra-low temperatures. The experimental measurement scheme employs an optical vector network analysis that provides high precision measurement of amplitude, phase and group delay and paves the way towards full on-chip integration of optical quantum memory setups. We found that sub-Kelvin temperatures are the necessary requirement for observing electromagnetically induced transparency in this crystal at low fields. A good agreement between theory and experiment is achieved by taking into account the phonon bottleneck effect
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