Quantum coding in non-inertial frames
arXiv:1302.7295 · doi:10.1007/s11128-013-0688-4
Abstract
The capacity of accelerated channel is investigated for different classes of initial states. It is shown that, the capacities of the travelling channels depend on the frame in which the accelerated channels are observed in and the initial shared state between the partners. In some frames, the capacities decay as the accelerations of both qubit increase. The decay rate is larger if the partners are initially share a maximum entangled state. The possibility of using the accelerated quantum channels to perform quantum coding protocol is discussed. The amount of decoded information is quantified for different cases, where it decays as the partner's accelerations increase to reach its minimum bound. This minimum bound depends on the initial shared states and it is large for maximum entangled state.
References in corpus (7)
- Entanglement of Dirac fields in non-inertial frames
- Redistribution of particle and anti-particle entanglement in non-inertial frames
- Entanglement and discord: accelerated observations of local and global modes
- Manipulating sudden death of entanglement of two-qubit X-states in thermal reservoirs
- Localized detection of quantum entanglement through the event horizon
- Teleportation of Accelerated Information
- Fundamental limitations to information transfer in accelerated frames
Cited by in corpus (8)
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- Restrain the losses of the entanglement and the non-local advantage of quantum coherence for accelerated quantum systems
- Teleportation with Multiple Accelerated Partners
- Superdense Coding with Uniformly Accelerated Particle
- Unruh acceleration effect on the precision of parameter estimation
- Immunity, Improving and Retrieving the lost entanglement of accelerated qubit-qutrit system via local Filtering
- The concealment of accelerated information is possible
- Fisher information of accelerated two-qubit system in the presence of the color and white noise channels