Teleportation via a two-qubit Heisenberg XYZ model in the presence of phase decoherence
We investigate quantum teleportation using the entangled channel consisting of a two-qubit Heisenberg XYZ model with a nonuniform magnetic field in the presence of phase decoherence. It is shown that the initial state of the channel plays an important role in the fully entangled fraction and the average fidelity of teleportation. The distinct feature of our teleportation scheme is that when the initial system is in the state |Ψ〉=m2|01〉+n2|10〉, the corresponding average fidelity is always larger than 2/3 even if there exist phase decoherence effects. Moreover, under certain circumstance, the average teleportation fidelity can be optimized by adjusting the magnitude of the nonuniform magnetic field.
Year of publication: |
2008
|
---|---|
Authors: | Yu, Peng-Fei ; Cai, Ji-Guang ; Liu, Jin-Ming ; Shen, Guo-Tu |
Published in: |
Physica A: Statistical Mechanics and its Applications. - Elsevier, ISSN 0378-4371. - Vol. 387.2008, 18, p. 4723-4728
|
Publisher: |
Elsevier |
Subject: | Teleportation | Heisenberg model | Phase decoherence | Fidelity |
Saved in:
Saved in favorites
Similar items by subject
-
Zhou, Zheng Wei, (2000)
-
Quantum teleportation of distant atomic states via the detection of strongly detuned cavity decay
Xiao, Yun-Feng, (2005)
-
Inequalities between ground-state energies of Heisenberg models
Wojtkiewicz, Jacek, (2015)
- More ...
Similar items by person