Anti-bunching dynamics of plasmonically mediated entanglement generation
arXiv:1705.08461 · doi:10.1103/PhysRevA.96.053826
Abstract
Dissipative entanglement generation protocols embrace environmental interactions in order to generate long-lived entangled states. In this letter, we report on the anti-bunching dynamics for a pair of actively driven quantum emitters coupled to a shared dissipative plasmonic reservoir. We find that anti-bunching is a universal signature for entangled states generated by dissipative means and examine its use as an entanglement diagnostic. We discuss the experimental validation of plasmonically mediated entanglement generation by Hanbury Brown-Twiss interferometry with picosecond timing resolution determined by an effective two-qubit Rabi frequency, and we analyze the robustness of entanglement generation with respect to perturbations in local detunings, couplings, and driving fields.
6 pages , 5 figures
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- Optical Detection and Storage of Entanglement in Plasmonically Coupled Quantum Dot Qubits
- Stationary two-qubit entanglement mediated by one-dimensional plasmonic nanoarrays
- Near-field imaging of plasmonic nanopatch antennas with integrated semiconductor quantum dots