URI | http://purl.tuc.gr/dl/dias/C54EC794-A215-48ED-822D-ABFC75456F22 | - |
Αναγνωριστικό | http://iopscience.iop.org/article/10.1088/1367-2630/15/8/083017/meta | - |
Αναγνωριστικό | https://doi.org/10.1088/1367-2630/15/8/083017 | - |
Γλώσσα | en | - |
Μέγεθος | 32 pages | en |
Τίτλος | Robust-to-loss entanglement generation using a quantum plasmonic nanoparticle array | en |
Δημιουργός | Lee Changhyoup | en |
Δημιουργός | Tame Mark | en |
Δημιουργός | Noh Changsuk | en |
Δημιουργός | Lim James | en |
Δημιουργός | Maier Stefan A. | en |
Δημιουργός | Lee Jinhyoung | en |
Δημιουργός | Aggelakis Dimitrios | en |
Δημιουργός | Αγγελακης Δημητριος | el |
Εκδότης | IOP Publishing | en |
Περίληψη | We introduce a scheme for generating entanglement between two quantum dots using a plasmonic waveguide made from an array of metal nanoparticles. We show that the scheme is robust to loss, enabling it to work over long distance plasmonic nanoparticle arrays, as well as in the presence of other imperfections such as the detuning of the energy levels of the quantum dots. The scheme represents an alternative strategy to the previously introduced dissipative driven schemes for generating entanglement in plasmonic systems. Here, the entanglement is generated by using dipole-induced interference effects and detection-based postselection. Thus, contrary to the widely held view that loss is major problem for quantum plasmonic systems, we provide a robust-to-loss entanglement generation scheme that could be used as a versatile building block for quantum state engineering and control at the nanoscale. | en |
Τύπος | Peer-Reviewed Journal Publication | en |
Τύπος | Δημοσίευση σε Περιοδικό με Κριτές | el |
Άδεια Χρήσης | http://creativecommons.org/licenses/by/4.0/ | en |
Ημερομηνία | 2015-10-20 | - |
Ημερομηνία Δημοσίευσης | 2013 | - |
Θεματική Κατηγορία | Quantum physics | en |
Θεματική Κατηγορία | Optics | en |
Βιβλιογραφική Αναφορά | C. Lee, M. Tame, C. Noh, J. Lim, S. A. Maier, J. Lee and D. G. Angelakis, "Robust-to-loss entanglement generation using a quantum plasmonic nanoparticle array", New J. Phys., vol. 15, Aug. 2013. doi:10.1088/1367-2630/15/8/083017 | en |