Topological quantum memory interfacing atomic and superconducting qubits
arXiv:1301.4139 · doi:10.1007/s11433-016-0015-3
Abstract
We propose a scheme to manipulate a topological spin qubit which is realized with cold atoms in a one-dimensional optical lattice. In particular, by introducing a quantum opto-electro-mechanical interface, we are able to first transfer a superconducting qubit state to an atomic qubit state and then to store it into the topological spin qubit. In this way, an efficient topological quantum memory could be constructed for the superconducting qubit. Therefore, we can consolidate the advantages of both the noise resistance of the topological qubits and the scalability of the superconducting qubits in this hybrid architecture.
v2: Accepted for publication in Science China-Physics, Mechanics & Astronomy
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Cited by in corpus (4)
- Quantum state conversion in opto-electro-mechanical systems via shortcut to adiabaticity
- Resonance interaction energy between two entangled atoms in a photonic bandgap environment
- Universal distributed quantum computing on superconducting qutrits with dark photons
- External control of qubit-photon interaction and multi-qubit reset in a dissipative quantum network