Universal quantum computation with quantum-dot cellular automata in dephasing-free subspace
arXiv:0801.4617
Abstract
We investigate the possibility to have electron-pairs in dephasing-free subspace (DFS), by means of the quantum-dot cellular automata (QCA) and single-spin rotations, to carry out a high-fidelity and deterministic universal quantum computation. We show that our QCA device with electrons tunneling two dimensionally is very suitable for DFS encoding, and argue that our design favors a scalable quantum computation robust to collective dephasing errors.
10 pages, 3 figures
References in corpus (8)
- Single-shot read-out of an individual electron spin in a quantum dot
- Bang-bang control of fullerene qubits using ultra-fast phase gates
- Charge detection enables free-electron quantum computation
- Universal quantum computation in deocoherence-free subspace with neutral atoms
- Cluster-state preparation and multipartite entanglement analyzer with fermions
- Charge-to-spin conversion of electron entanglement states and spin-interaction-free solid-state quantum computation
- Spin entanglement using coherent light and cavity-QED
- Decoherence of Rabi oscillations of electronic spin states in a double quantum dot