Experimental hierarchy and optimal robustness of quantum correlations of
two-qubit states with controllable white noise
- URL: http://arxiv.org/abs/2103.03691v2
- Date: Fri, 31 Dec 2021 08:37:36 GMT
- Title: Experimental hierarchy and optimal robustness of quantum correlations of
two-qubit states with controllable white noise
- Authors: Kate\v{r}ina Jir\'akov\'a, Anton\'in \v{C}ernoch, Karel Lemr, Karol
Bartkiewicz and Adam Miranowicz
- Abstract summary: We show a hierarchy of various classes of quantum correlations on experimentally prepared two-qubit Werner-like states with controllable white noise.
We find threshold curves separating different regimes of the quantum correlations and find the optimal states which allow for the largest amount of white noise.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We demonstrate a hierarchy of various classes of quantum correlations on
experimentally prepared two-qubit Werner-like states with controllable white
noise. Werner states, which are white-noise-affected Bell states, are
prototypal examples for studying such a hierarchy as a function of the amount
of white noise. We experimentally generated Werner states and their
generalizations, i.e., partially entangled pure states affected by white noise.
These states enabled us to study the hierarchy of the following classes of
correlations: separability, entanglement, steering in three- and
two-measurement scenarios, and Bell nonlocality. We show that the generalized
Werner states (GWSs) reveal fundamentally different aspects of the hierarchy
compared to the Werner states. In particular, we find five different parameter
regimes of the GWSs, including those steerable in a two-measurement scenario
but not violating Bell inequalities. This regime cannot be observed for the
usual Werner states. Furthermore, we find threshold curves separating different
regimes of the quantum correlations and find the optimal states which allow for
the largest amount of white noise, which does not destroy their specific
quantum correlations (e.g., unsteerable entanglement). Thus, we could identify
the optimal Bell-nondiagonal GWSs, which are, for this specific meaning, more
robust against white noise compared to the Bell-diagonal GWSs (i.e., Werner
states).
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