Collective effects on atomic systems, nuclear spins and cavity quantum electrodyna...
Building the Quantum Mechanics of Time-Dependent Pseudo-Hermitian Hamiltonians.
Full text | |
Author(s): |
Borges, H. S.
;
Sanz, L.
;
Alcalde, A. M.
Total Authors: 3
|
Document type: | Journal article |
Source: | Physics Letters A; v. 380, n. 38, p. 3111-3116, SEP 7 2016. |
Web of Science Citations: | 3 |
Abstract | |
The entanglement of an optically generated electron-hole pair in artificial quantum dot molecules is calculated considering the effects of decoherence by interaction with environment. Since the system evolves into mixed states and due to the complexity of energy level structure, we use the negativity as entanglement quantifier, which is well defined in D circle times D' composite vector spaces. By a numerical analysis of the non -unitary dynamics of the exciton states, we establish the feasibility of producing protected entangled superposition by an appropriate tuning of bias electric field, F. A stationary state with a high value of negativity (high degree of entanglement) is obtained by fine tuning of F close to a resonant condition between indirect excitons. We also found that when the optical excitation is approximately equal to the electron tunneling coupling, Omega/T-e similar to 1, the entanglement reaches a maximum value. In front of the experimental feasibility of the specific condition mentioned before, our proposal becomes an useful strategy to find robust entangled states in condensed matter systems. (C) 2016 Elsevier B.V. All rights reserved. (AU) | |
FAPESP's process: | 14/12740-1 - Quantum memory and cavity electrodynamics in quantum dots coupled by tunneling |
Grantee: | Halyne Silva Borges |
Support Opportunities: | Scholarships in Brazil - Post-Doctoral |