Implementations of two-photon four-qubit Toffoli and Fredkin gates assisted by nitrogen-vacancy centers
arXiv:1703.00274 · doi:10.1038/srep35529
Abstract
It is desirable to implement an efficient quantum information process demanding fewer quantum resources. We designed two compact quantum circuits for determinately implementing four-qubit Toffoli and Fredkin gates on single-photon systems in both the polarization and spatial degrees of freedom (DoFs) via diamond nitrogen-vacancy (NV) centers in resonators. The gates are heralded by the electron spins associated with the diamond NV centers. In contrast to the ones with one DoF, our implementations reduce the quantum resource and are robust against the decoherence. Evaluations of fidelities and efficiencies of our gates show that our schemes may be implemented with current technology.
9 pages,5 figures
References in corpus (17)
- High-fidelity projective readout of a solid-state spin quantum register
- Unconditional quantum teleportation between distant solid-state qubits
- Nanophotonic quantum phase switch with a single atom
- Decoherence-protected quantum gates for a hybrid solid-state spin register
- A Quantum Gate between a Flying Optical Photon and a Single Trapped Atom
- Experimental Realization of Universal Geometric Quantum Gates with Solid-State Spins
- Realization of the quantum Toffoli gate with trapped ions
- Giant optical Faraday rotation induced by a single electron spin in a quantum dot: Applications to entangling remote spins via a single photon
- Quantum information processing with a single photon by input-output process regarding low-Q cavities
- Single-photon logic gates using minimal resources
- Universal hyperparallel hybrid photonic quantum gates with dipole-induced transparency in the weak-coupling regime
- Storage and retrieval of ultrafast single photons using a room-temperature diamond quantum memory
- Fast universal quantum gates on microwave photons with all-resonance operations in circuit QED
- Hyper-parallel Toffoli gate on three-photon system with two degrees of freedom assisted by single-sided optical microcavities
- Methods for linear optical quantum Fredkin gate
- Room-temperature high-speed nuclear-spin quantum memory in diamond
- Demonstration of Deutsch's Algorithm on a Stable Linear-Optical Quantum Computer