Entanglement without Dissipation: A Touchstone for an exact Comparison of Entanglement Measures
arXiv:1005.1945 · doi:10.1016/j.optcom.2009.10.066
Abstract
Entanglement, which is an essential characteristic of quantum mechanics, is the key element in potential practical quantum information and quantum communication systems. However, there are many open and fundamental questions (relating to entanglement measures, sudden death, etc.) that require a deeper understanding. Thus, we are motivated to investigate a simple but non-trivial correlated two-body continuous variable system in the absence of a heat bath, which facilitates an \underline{exact} measure of the entanglement at all times. In particular, we find that the results obtained from all well-known existing entanglement measures agree with each other but that, in practice, some are more straightforward to use than others.
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- Disentanglement and Decoherence without dissipation at non-zero temperatures
- Gouy phase of type-I SPDC-generated biphotons
- Biphoton phase-space correlations from Gouy-phase measurements using double slits
- Sorkin parameter for type-I spontaneous parametric down-conversion biphotons and matter waves