Środowiskowe Seminarium z Informacji i Technologii Kwantowych
2012/2013 | 2013/2014 | 2014/2015 | 2015/2016 | 2016/2017 | 2017/2018 | 2018/2019 | 2019/2020 | 2020/2021 | 2021/2022 | 2022/2023 | 2023/2024 | 2024/2025 | kanał YouTube
do roku 2023/2024 Seminarium Kwantowa Informacja | kanał YouTube
2013-11-14 (Czwartek)
Marco Genoni (Imperial College London)
Quantum feedback control of mechanical squeezing
We propose and demonstrate a simple feedback control mechanism for the squeezing of a quantum harmonic oscillator embodied by the phononic mode of a mechanical oscillator. Our proposal is based on frequent re- peated measurements and re-initialisation of the state of a two-level system ancilla that interacts with the os- cillator. We demonstrate that the steady-state of the mechanical mode can be significantly squeezed with such a simple, non-adaptive feedback loop, which offers interesting possibilities for quantum state engineering and feedback-based state steering in an explicitly open-system scenario.
2013-10-31 (Czwartek)
Michał Oszmaniec (CFT PAN)
Uniwersalne kryterium wykrywania korelacji kwantowych
Universal entanglement detection criterium
2013-10-24 (Czwartek)
Matteo Paris (Universita degli studi di Milano)
Homodyne receiver for nearly optimal phase estimation and communication in the presence of phase diffusion
Phase diffusion represents a crucial obstacle toward the implementation of high-precision interferometric measurements and phase-shift-based communication channels. We present our recent theoretical and experimental results based on a homodyne receiver in the case of two different scenarios: phase estimation and binary optical communication channels based on phase-shift keyed coherent signals. We show that homodyne receiver is a near-optimum receiver for the detection of a phase shift of coherent signals in the presence of large phase diffusion. Interestingly, the ultimate bound to interferometric sensitivity is achieved already for a small number of measurements (hundreds). We prove theoretically and demonstrate experimentally that a discrimination stategy based on homodyne detection is robust against phase diffusion. Homodyne receiver beats the performance of Kennedy one as the signal energy increases, and achieves the Helstrom bound in the limit of large noise. Furthermore, for any value of the energy (also in the low energy regime) there is a threshold value of the phase noise, which makes homodyne detection performing better than the Kennedy receiver in the presence of phase diffusion.
2013-10-17 (Czwartek)
Adam Bednorz (IFT UW)
Nonclassical properties of quantum noninvasive measurements
2013-10-10 (Czwartek)
Rafał Demkowicz-Dobrzański (IFT UW)
Optimal atomic clocks - a naive theorist approach
2013-10-03 (Czwartek)
Ryszard Kostecki (Perimeter Institute for Theoretical Physics, Waterloo, Canada)
Foundational applications of nonlinear quantum geometries
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