Published June 14, 2011 | Version v1
Journal article

Remote state preparation via a GHZ-class state in noisy environments

  • 1. Department of Physics and Materials Engineering, College of Physics and Electronic Engineering, Taizhou University, Taizhou 318000 (China)
  • 2. State Key Laboratory of Precision Spectroscopy, Department of Physics, East China Normal University, Shanghai 200062 (China)

Description

Using a GHZ-class state as a quantum channel, we investigate the remote preparation of a qubit state and that of an entangled state in noisy environments. By analytically solving the master equation in Lindblad form, we first obtain the time evolution of the GHZ-class quantum channel. Then the influence of the noises on the process of remote state preparation is considered through analytical derivation of the fidelity and numerical calculations of the corresponding average fidelity. Our results show that the fidelity depends on the noise type, the state to be remotely prepared, the GHZ-class state and the decoherence rate. Moreover, it is found that no matter whether the qubit state or the entangled state is to be remotely prepared, the maximally entangled quantum channel has a relatively stronger ability to resist the influence of noises. Besides, the effect of the bit-phase flip noise on the average fidelity is relatively stronger than that of the bit flip noise or phase flip noise.

Availability note (English)

Available from http://dx.doi.org/10.1088/0953-4075/44/11/115506

Additional details

Identifiers

DOI
10.1088/0953-4075/44/11/115506;
PII
S0953-4075(11)84652-3;

Publishing Information

Journal Title
Journal of Physics. B, Atomic, Molecular and Optical Physics
Journal Volume
44
Journal Issue
11
Journal Page Range
[8 p.]
ISSN
0953-4075
CODEN
JPAPEH

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
43012995
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Descriptors DEI
EVOLUTION; NOISE; QUANTUM ENTANGLEMENT; QUBITS
Descriptors DEC
INFORMATION; QUANTUM INFORMATION