Entanglement Measures in Ion-Trap Quantum Simulators without Full Tomography
arXiv:1402.4409 · doi:10.1103/PhysRevA.90.012327
Abstract
We propose a quantum algorithm in an embedding ion-trap quantum simulator for the efficient computation of N-qubit entanglement monotones without the necessity of full tomography. Moreover, we discuss possible realistic scenarios and study the associated decoherence mechanisms.
5 pages, 2 figures
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- Algorithmic quantum simulation of memory effects
- NOON state generation with phonons in acoustic wave resonators assisted by a nitrogen-vacancy-center ensemble
- Continuous monitoring measured signals bounded by past and future conditions in enlarged quantum systems