Robust-fidelity hyperparallel controlled-phase-flip gate through
microcavities
- URL: http://arxiv.org/abs/2008.00258v1
- Date: Sat, 1 Aug 2020 13:02:24 GMT
- Title: Robust-fidelity hyperparallel controlled-phase-flip gate through
microcavities
- Authors: Hai-Rui Wei, Yan-Bei Zheng, Ming Hua, and Guo-Fu Xu
- Abstract summary: Hyperparallel quantum information processing outperforms its traditional parallel one in terms of channel capacity, low loss rate, and processing speed.
We present a way for implementing a robust hyper-parallel optical controlled-phase-flip gate through microcavities.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Hyperparallel quantum information processing outperforms its traditional
parallel one in terms of channel capacity, low loss rate, and processing speed.
We present a way for implementing a robust hyper-parallel optical
controlled-phase-flip gate through microcavities. The gate acts on polarization
and spatial degrees of freedom (DOFs) simultaneously, and the incomplete and
undesired interactions between photons and quantum dots are prevented.
Interestingly, the unity fidelity of the gate can be achieved in principle, and
the success of the gate is heralded by the single-photon detectors.
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