Publication | Open Access
Gapped Two-Body Hamiltonian Whose Unique Ground State Is Universal for One-Way Quantum Computation
74
Citations
14
References
2009
Year
Quantum Lattice SystemEngineeringMany-body Quantum PhysicQuantum ComputingQuantum Mechanical PropertyQuantum TheoryQuantum EntanglementQuantum MatterHexagonal LatticeQuantum SciencePhysicsSix-state ParticlesQuantum AlgorithmQuantum InformationNatural SciencesCondensed Matter PhysicsApplied PhysicsQuantum SystemUniversal StateOne-way Quantum Computation
Many-body entangled quantum states studied in condensed matter physics can be primary resources for quantum information, allowing any quantum computation to be realized using measurements alone, on the state. Such a universal state would be remarkably valuable, if only it were thermodynamically stable and experimentally accessible, by virtue of being the unique ground state of a physically reasonable Hamiltonian made of two-body, nearest-neighbor interactions. We introduce such a state, composed of six-state particles on a hexagonal lattice, and describe a general method for analyzing its properties based on its projected entangled pair state representation.
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