Publication | Open Access
Measurement-Based Quantum Computer in the Gapped Ground State of a Two-Body Hamiltonian
162
Citations
22
References
2008
Year
EngineeringQuantum MeasurementQuantum SensingMeasurement-based Quantum ComputerQuantum ComputingOptical LatticeQuantum EntanglementTwo-body HamiltonianLogical InformationQuantum SciencePhotonicsPhysicsComputer EngineeringQuantum InformationQuantum TransducersQuantum DecoherenceQuantum TeleportationNatural SciencesApplied PhysicsGapped Ground StateLogical QubitQuantum Error Correction
We propose a scheme for a ground-code measurement-based quantum computer, which enjoys two major advantages. First, every logical qubit is encoded in the gapped degenerate ground subspace of a spin-1 chain with nearest-neighbor two-body interactions, so that it equips built-in robustness against noise. Second, computation is processed by single-spin measurements along multiple chains dynamically coupled on demand, so as to keep teleporting only logical information into a gap-protected ground state of the residual chains after the interactions with spins to be measured are turned off. We describe implementations using trapped atoms or polar molecules in an optical lattice, where the gap is expected to be as large as 0.2 or 4.8 kHz, respectively.
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