| URI | http://purl.tuc.gr/dl/dias/70B4B919-1F81-4187-824E-0509FF282F5E | - |
| Αναγνωριστικό | https://journals.aps.org/pra/abstract/10.1103/PhysRevA.90.012325 | - |
| Αναγνωριστικό | https://doi.org/10.1103/PhysRevA.90.012325 | - |
| Γλώσσα | en | - |
| Μέγεθος | 9 pages | en |
| Τίτλος | Quantum simulation of superexchange magnetism in linear ion crystals | en |
| Δημιουργός | Ivanov Peter A. | en |
| Δημιουργός | Karchev Naoum I. | en |
| Δημιουργός | Vitanov, Nikolaĭ | en |
| Δημιουργός | Aggelakis Dimitrios | en |
| Δημιουργός | Αγγελακης Δημητριος | el |
| Εκδότης | American Physical Society | en |
| Περίληψη | We present a system for the simulation of Heisenberg models with spins s=12 and s=1 with a linear crystal of trapped ions. We show that the laser-ion interaction induces a Jaynes-Cummings-Hubbard interaction between the atomic V-type level structure and the two phonon species. In the strong-coupling regime the collective atom and phonon excitations become localized at each lattice site and form an effective spin system with varying length. We show that the quantum-mechanical superexchange interaction caused by the second-order phonon hopping processes creates a Heisenberg-type coupling between the individual spins. Trapped ions allow to control the superexchange interactions by adjusting the trapping frequencies, the laser intensity, and the detuning. | 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 | 2014 | - |
| Θεματική Κατηγορία | Relativistic quantum field theory | en |
| Θεματική Κατηγορία | quantum field theory | en |
| Θεματική Κατηγορία | relativistic quantum field theory | en |
| Θεματική Κατηγορία | Quantum physics | en |
| Βιβλιογραφική Αναφορά | P. A. Ivanov, N. I. Karchev, N. V. Vitanov and D. G. Angelakis, "Quantum simulation of superexchange magnetism in linear ion crystals" Phys. Rew. A, vol. 90, no. 1, Jul. 2014. doi: http://dx.doi.org/10.1103/PhysRevA.90.012325 | en |