Robust and scalable optical one-way quantum computation
arXiv:0912.4016 · doi:10.1103/PhysRevA.81.052332
Abstract
We propose an efficient approach for deterministically generating scalable cluster states with photons. This approach involves unitary transformations performed on atoms coupled to optical cavities. Its operation cost scales linearly with the number of qubits in the cluster state, and photon qubits are encoded such that single-qubit operations can be easily implemented by using linear optics. Robust optical one-way quantum computation can be performed since cluster states can be stored in atoms and then transferred to photons that can be easily operated and measured. Therefore, this proposal could help performing robust large-scale optical one-way quantum computation.
6 pages, 4 figures
References in corpus (8)
- Measurement-based quantum computation
- Superconducting Circuits and Quantum Information
- Resource-efficient linear optical quantum computation
- High-speed linear optics quantum computing using active feed-forward
- Realization and characterization of a 2-photon 4-qubit linear cluster state
- Deterministic generation of large cluster states using non-deterministic collective measurements based on quantum Zeno effect
- Producing cluster states in charge qubits and flux qubits
- Efficient one-step generation of large cluster states with solid-state circuits
Cited by in corpus (6)
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- Coherent-cluster-state generation in networks of degenerate optical parametric oscillators
- Nonclassical Preparation of Quantum Remote States
- Preparing Remote States for Genuine Quantum Networks