Abstract

We study quantum information processing in complex disordered many body systems that can be implemented by using lattices of ultracold atomic gases and trapped ions. We demonstrate, first in the short range case, the generation of entanglement and the local realization of quantum gates in a disordered magnetic model describing a quantum spin glass. We show that in this case it is possible to achieve fidelities of quantum gates higher than in the classical case. Complex systems with long range interactions, such as ions chains or dipolar atomic gases, can be used to model neural network Hamiltonians. For such systems, where both long range interactions and disorder appear, it is possible to generate long range bipartite entanglement. We provide an efficient analytical method to calculate the time evolution of a given initial state, which in turn allows us to calculate its quantum correlations.

Authors
A. Sen(De), M. Lewenstein, A. Sanpera, H. J. Briegel, V. Ahufinger, i U. Sen
Citation Key
PhysRevA.74.062309
COinS Data

Date Published
2015-04-14 03:03
DOI
10.1103/PhysRevA.74.062309
Pagination
062309
Publisher
American Physical Society
Journal
Phys. Rev. A
URL
http://link.aps.org/doi/10.1103/PhysRevA.74.062309
Volume
74
Year of Publication
2006