Generation and complete nondestructive analysis of hyperentanglement assisted by nitrogen-vacancy centers in resonators
arXiv:1507.06108 · doi:10.1103/PhysRevA.91.062321
Abstract
We present two efficient schemes for the deterministic generation and the complete nondestructive analysis of hyperentangled Bell states in both the polarization and spatial-mode degrees of freedom (DOFs) of two-photon systems, assisted by the nitrogen-vacancy (NV) centers in diamonds coupled to microtoroidal resonators as a result of cavity quantum electrodynamics (QED). With the input-output process of photons, two-photon polarization-spatial hyperentangled Bell states can be generated in a deterministic way and their complete nondestructive analysis can be achieved. These schemes can be generalized to generate and analyze hyperentangled Greenberger-Horne-Zeilinger states of multi-photon systems as well. Compared with previous works, these two schemes relax the difficulty of their implementation in experiment as it is not difficult to obtain the phase shift in single-sided NV-cavity systems. Moreover, our schemes do not require that the transmission for the uncoupled cavity is balanceable with the reflectance for the coupled cavity. Our calculations show that these schemes can reach a high fidelity and efficiency with current technology, which may be a benefit to long-distance high-capacity quantum communication with two DOFs of photon systems.
References in corpus (11)
- Beating the channel capacity limit for linear photonic superdense coding
- Decoherence-protected quantum gates for a hybrid solid-state spin register
- Cavity QED with Diamond Nanocrystals and Silica Microspheres
- One-step deterministic polarization entanglement purification using spatial entanglement
- Complete and Deterministic discrimination of polarization Bell state assisted by momentum entanglement
- One-step error correction for multipartite polarization entanglement
- Two-step hyperentanglement purification with the quantum-state-joining method
- Hyperentanglement of two photons in three degrees of freedom
- Coherent interference effects in a nano-assembled optical cavity-QED system
- Hyperconcentration for multipartite entanglement via linear optics
- Linear-Optical Hyperentanglement-Assisted Quantum Error-Correcting Code
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